USRE48944E1 - Method and apparatus for use in improving linearity of MOSFETS using an accumulated charge sink - Google Patents
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- H03K17/00—Electronic switching or gating, i.e. not by contact-making and –breaking
- H03K17/16—Modifications for eliminating interference voltages or currents
- H03K17/161—Modifications for eliminating interference voltages or currents in field-effect transistor switches
- H03K17/162—Modifications for eliminating interference voltages or currents in field-effect transistor switches without feedback from the output circuit to the control circuit
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- H01L29/0649—
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- H—ELECTRICITY
- H03—ELECTRONIC CIRCUITRY
- H03K—PULSE TECHNIQUE
- H03K17/00—Electronic switching or gating, i.e. not by contact-making and –breaking
- H03K17/51—Electronic switching or gating, i.e. not by contact-making and –breaking characterised by the components used
- H03K17/56—Electronic switching or gating, i.e. not by contact-making and –breaking characterised by the components used by the use, as active elements, of semiconductor devices
- H03K17/687—Electronic switching or gating, i.e. not by contact-making and –breaking characterised by the components used by the use, as active elements, of semiconductor devices the devices being field-effect transistors
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- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10D—INORGANIC ELECTRIC SEMICONDUCTOR DEVICES
- H10D30/00—Field-effect transistors [FET]
- H10D30/60—Insulated-gate field-effect transistors [IGFET]
- H10D30/67—Thin-film transistors [TFT]
- H10D30/6704—Thin-film transistors [TFT] having supplementary regions or layers in the thin films or in the insulated bulk substrates for controlling properties of the device
- H10D30/6706—Thin-film transistors [TFT] having supplementary regions or layers in the thin films or in the insulated bulk substrates for controlling properties of the device for preventing leakage current
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- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10D—INORGANIC ELECTRIC SEMICONDUCTOR DEVICES
- H10D30/00—Field-effect transistors [FET]
- H10D30/60—Insulated-gate field-effect transistors [IGFET]
- H10D30/67—Thin-film transistors [TFT]
- H10D30/6704—Thin-film transistors [TFT] having supplementary regions or layers in the thin films or in the insulated bulk substrates for controlling properties of the device
- H10D30/6708—Thin-film transistors [TFT] having supplementary regions or layers in the thin films or in the insulated bulk substrates for controlling properties of the device for preventing the kink effect or the snapback effect, e.g. discharging the minority carriers of the channel region for preventing bipolar effect
- H10D30/6711—Thin-film transistors [TFT] having supplementary regions or layers in the thin films or in the insulated bulk substrates for controlling properties of the device for preventing the kink effect or the snapback effect, e.g. discharging the minority carriers of the channel region for preventing bipolar effect by using electrodes contacting the supplementary regions or layers
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- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10D—INORGANIC ELECTRIC SEMICONDUCTOR DEVICES
- H10D62/00—Semiconductor bodies, or regions thereof, of devices having potential barriers
- H10D62/10—Shapes, relative sizes or dispositions of the regions of the semiconductor bodies; Shapes of the semiconductor bodies
- H10D62/113—Isolations within a component, i.e. internal isolations
- H10D62/115—Dielectric isolations, e.g. air gaps
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- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10D—INORGANIC ELECTRIC SEMICONDUCTOR DEVICES
- H10D62/00—Semiconductor bodies, or regions thereof, of devices having potential barriers
- H10D62/10—Shapes, relative sizes or dispositions of the regions of the semiconductor bodies; Shapes of the semiconductor bodies
- H10D62/17—Semiconductor regions connected to electrodes not carrying current to be rectified, amplified or switched, e.g. channel regions
- H10D62/393—Body regions of DMOS transistors or IGBTs
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- H03K2217/00—Indexing scheme related to electronic switching or gating, i.e. not by contact-making or -breaking covered by H03K17/00
- H03K2217/0018—Special modifications or use of the back gate voltage of a FET
-
- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10D—INORGANIC ELECTRIC SEMICONDUCTOR DEVICES
- H10D30/00—Field-effect transistors [FET]
- H10D30/60—Insulated-gate field-effect transistors [IGFET]
- H10D30/67—Thin-film transistors [TFT]
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- H10D30/6741—Group IV materials, e.g. germanium or silicon carbide
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- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10D—INORGANIC ELECTRIC SEMICONDUCTOR DEVICES
- H10D30/00—Field-effect transistors [FET]
- H10D30/60—Insulated-gate field-effect transistors [IGFET]
- H10D30/67—Thin-film transistors [TFT]
- H10D30/674—Thin-film transistors [TFT] characterised by the active materials
- H10D30/675—Group III-V materials, Group II-VI materials, Group IV-VI materials, selenium or tellurium
Definitions
- the present invention relates to metal-oxide-semiconductor (MOS) field effect transistors (FETs), and particularly to MOSFETs fabricated on Semiconductor-On-Insulator (“SOI”) and Semiconductor-On-Sapphire (“SOS”) substrates.
- MOS metal-oxide-semiconductor
- SOI Semiconductor-On-Insulator
- SOS Semiconductor-On-Sapphire
- an SOI (or SOS) MOSFET is adapted to control accumulated charge and thereby improve linearity of circuit elements.
- MOSFETs are described herein as applicable for use in SOI MOSFETs, it will be appreciated by those skilled in the electronic device design arts that the present teachings are equally applicable for use in SOS MOSFETs.
- the present teachings can be used in the implementation of MOSFETs using any convenient semiconductor-on-insulator technology, including silicon-on-insulator technology.
- inventive MOSFETs described herein can be implemented using compound semiconductors on insulating substrates.
- Such compound semiconductors include, but are not limited to, the following: Silicon Germanium (SiGe), Gallium Arsenide (GaAs), Indium Phosphide (InP), Gallium Nitride (GaN), Silicon Carbide (SiC), and II-VI compound semiconductors, including Zinc Selenide (ZnSe) and Zinc Sulfide (ZnS).
- the present teachings also may be used in implementing MOSFETs fabricated from thin-film polymers.
- Organic thin-film transistors (OTFTs) utilize a polymer, conjugated polymers, oligomers, or other molecules to form the insulting gate dielectric layer.
- the present inventive methods and apparatus may be used in implementing such OTFTs.
- FIG. 1 shows a cross-sectional view of an exemplary prior art SOI NMOSFET 100 .
- the prior art SOI NMOSFET 100 includes an insulating substrate 118 that may comprise a buried oxide layer, sapphire, or other insulating material.
- a source 112 and drain 116 of the NMOSFET 100 comprise N+ regions (i.e., regions that are heavily doped with an “n-type” dopant material) produced by ion implantation into a silicon layer positioned above the insulating substrate 118 .
- the source and drain of PMOSFETs comprise P+ regions (i.e., regions heavily doped with “p-type” dopant material)).
- the body 114 comprises a P ⁇ region (i.e., a region that is lightly doped with a “p-type” dopant), produced by ion implantation, or by dopants already present in the silicon layer when it is formed on the insulating substrate 118 . As shown in FIG.
- the NMOSFET 100 also includes a gate oxide 110 positioned over the body 114 .
- the gate oxide 110 typically comprises a thin layer of an insulating dielectric material such as SiO 2 .
- the gate oxide 110 electrically insulates the body 114 from a gate 108 positioned over the gate oxide 110 .
- the gate 108 comprises a layer of metal or, more typically, polysilicon.
- a source terminal 102 is operatively coupled to the source 112 so that a source bias voltage “Vs” may be applied to the source 112 .
- a drain terminal 106 is operatively coupled to the drain 116 so that a drain bias voltage “Vd” may be applied to the drain 116 .
- a gate terminal 104 is operatively coupled to the gate 108 so that a gate bias voltage “Vg” may be applied to the gate 108 .
- a positive gate bias creates a channel in the channel region of the MOSFET body through which current passes between the source and drain.
- a depletion mode device a channel is present for a zero gate bias. Varying the voltage applied to the gate modulates the conductivity of the channel and thereby controls the current flow between the source and drain.
- the gate bias creates a so-called “inversion channel” in a channel region of the body 114 under the gate oxide 110 .
- the inversion channel comprises carriers having the same polarity (e.g., “P” polarity (i.e., hole carriers), or “N” polarity (i.e., electron carriers) carriers) as the polarity of the source and drain carriers, and it thereby provides a conduit (i.e., channel) through which current passes between the source and the drain.
- P polarity
- N polarity
- conduit i.e., channel
- an inversion channel is formed in the channel region of the body 114 .
- the polarity of carriers in the inversion channel is identical to the polarity of carriers in the source and drain.
- the carriers in the channel comprise N polarity carriers.
- the carriers in the channel of turned on (i.e., conducting) PMOSFETs comprise P polarity carriers.
- Depletion mode MOSFETs operate similarly to enhancement mode MOSFETs, however, depletion mode MOSFETs are doped so that a conducting channel exists even without a voltage being applied to the gate. When a voltage of appropriate polarity is applied to the gate the channel is depleted. This, in turn, reduces the current flow through the depletion mode device.
- the depletion mode device is analogous to a “normally closed” switch, while the enhancement mode device is analogous to a “normally open” switch.
- Both enhancement and depletion mode MOSFETs have a gate voltage threshold, V th , at which the MOSFET changes from an off-state (non-conducting) to an on-state (conducting).
- accumulated charge is used herein to refer to gate-bias induced carriers that may accumulate in the body of an off-state MOSFET, even if the majority carriers in the body do not have the same polarity as the accumulated charge. This situation may occur, for example, in an off-state depletion mode NMOSFET, wherein the accumulated charge may comprise holes (i.e., having P polarity) even though the body doping is N ⁇ rather than P ⁇ .
- an accumulated charge 120 may accumulate in the body 114 underneath and proximate the gate oxide 110 .
- the operating state of the SOI NMOSFET 100 shown in FIG. 1 is referred to herein as an “accumulated charge regime” of the MOSFET.
- the accumulated charge regime is defined in more detail below. The causes and effects of the accumulated charge in SOI MOSFETs are now described in more detail.
- electron-hole pair carriers may be generated in MOSFET bodies as a result of several mechanisms (e.g., thermal, optical, and band-to-band tunneling electron-hole pair generation processes).
- electron-hole pair carriers When electron-hole pair carriers are generated within an NMOSFET body, for example, and when the NMOSFET is biased in an off-state condition, electrons may be separated from their hole counterparts and pulled into both the source and drain. Over a period of time, assuming the NMOSFET continues to be biased in the off-state, the holes (resulting from the separated electron-hole pairs) may accumulate under the gate oxide (i.e., forming an “accumulated charge”) underneath and proximate the gate oxide.
- a similar process (with the behavior of electrons and holes reversed) occurs in similarly biased PMOSFET devices. This phenomenon is now described with reference to the SOI NMOSFET 100 of FIG. 1 .
- the accumulated charge is opposite in polarity to the polarity of carriers in the channel. Because, as described above, the polarity of carriers in the channel is identical to the polarity of carriers in the source and drain, the polarity of the accumulated charge 120 is also opposite to the polarity of carriers in the source and drain. For example, under the operating conditions described above, holes (having “P” polarity) accumulate in off-state NMOSFETs, and electrons (having “N” polarity) accumulate in off-state PMOSFETs. Therefore, a MOSFET device is defined herein as operating within the “accumulated charge regime” when the MOSFET is biased to operate in an off-state, and when carriers having opposite polarity to the channel carriers are present in the channel region.
- a MOSFET is defined as operating within the accumulated charge regime when the MOSFET is biased to operate in an off-state, and when carriers are present in the channel region having a polarity that is opposite the polarity of the source and drain carriers.
- the accumulated charge 120 comprises hole carriers having P or “+” polarity.
- the carriers in the source, drain, and channel i.e., when the FET is in the on-state
- the carriers in the source, drain, and channel comprise electron carriers having N or “ ⁇ ” polarity.
- the SOI NMOSFET 100 is therefore shown in FIG. 1 as operating in the accumulated charge regime. It is biased to operate in an off-state, and an accumulated charge 120 is present in the channel region.
- the accumulated charge 120 is opposite in polarity (P) to the polarity of the channel, source and drain carriers (N).
- V th is negative by definition.
- the body 114 comprises an N ⁇ region (as contrasted with the P ⁇ region shown in FIG. 1 ).
- the source and drain comprise N+ regions similar to those shown in the enhancement mode MOSFET 100 of FIG. 1 .
- Vs and Vd both at zero volts, when a gate bias Vg is applied that is sufficiently negative relative to V th (for example, a Vg that is more negative than approximately ⁇ 1 V relative to V th ), the depletion mode NMOSFET is biased into an off-state. If biased in the off-state for a sufficiently long period of time, holes may accumulate under the gate oxide and thereby comprise the accumulated charge 120 shown in FIG. 1 .
- Vs and Vd may comprise nonzero bias voltages.
- Vg must be sufficiently negative to both Vs and Vd (in order for Vg to be sufficiently negative to V th , for example) in order to bias the NMOSFET in the off-state.
- bias voltages may be used to practice the present teachings. As described below in more detail, the present disclosed method and apparatus contemplates use in any SOI MOSFET device biased to operate in the accumulated charge regime.
- SOI and SOS MOSFETs are often used in applications in which operation within the accumulated charge regime adversely affects MOSFET performance. As described below in more detail, unless the accumulated charge is removed or otherwise controlled, it detrimentally affects performance of SOI MOSFETs under certain operating conditions.
- One exemplary application described below in more detail with reference to the circuits shown in FIGS. 2B and 5A , is the use of SOI MOSFETs in the implementation of radio frequency (RF) switching circuits. As described below with reference to FIGS.
- RF radio frequency
- the inventors have discovered that unless the accumulated charge is removed or otherwise controlled, under some operating conditions, the accumulated charge adversely affects the linearity of the SOI MOSFET and thereby increases harmonic distortion and intermodulation distortion (IMD) caused by the MOSFET when used in the implementation of certain circuits.
- IMD harmonic distortion and intermodulation distortion
- removal or control of the accumulated charge improves the drain-to-source breakdown voltage (i.e., the “BVDSS”) characteristics of the SOI MOSFETs.
- Apparatuses and methods are provided to control accumulated charge in SOI MOSFETs, thereby improving non-linear responses and harmonic and intermodulaton distortion effects in the operation of the SOI MOSFETs.
- a circuit having at least one SOI MOSFET is configured to operate in an accumulated charge regime.
- An accumulated charge sink (ACS) operatively coupled to the body of the SOI MOSFET, receives accumulated charge generated in the body, thereby reducing the nonlinearity of the net source-drain capacitance of the SOI MOSFET.
- the ACS comprises a high impedance connection to the MOSFET body, with an exemplary impedance greater than 10 6 ohm.
- FIG. 1 is a cross-sectional view of an exemplary prior art SOI NMOSFET.
- FIG. 2A is a simplified schematic of an electrical model showing the off-state impedance characteristics of the exemplary prior art SOI NMOSFET of FIG. 1 .
- FIG. 2B is a schematic of an exemplary simplified RF switching circuit implemented using prior art SOI MOSFETs such as the prior art SOI NMOSFET of FIG. 1 .
- FIGS. 3A and 3B are simplified schematic diagrams of a top view of an improved SOI NMOSFET adapted to control accumulated charge in accordance with the present teachings.
- FIG. 3C is a cross-sectional perspective schematic of an improved SOI NMOSFET adapted to control accumulated charge showing gate, source, drain and accumulated charge sink (ACS) terminals.
- ACS accumulated charge sink
- FIG. 3D is a simplified top view schematic of an improved SOI NMOSFET adapted to control accumulated charge having an accumulated charge sink (ACS) electrically coupled to a P+ region.
- ACS accumulated charge sink
- FIG. 3E is a simplified top view schematic of an improved SOI SOI NMOSFET adapted to control accumulated charge and showing a cross-sectional view line A-A′ taken along approximately a center of the SOI NMOSFET.
- FIG. 3F is a cross-sectional view of the improved SOI NMOSET of FIG. 3E taken along the A-A′ view line of FIG. 3E .
- FIG. 3G is a cross-sectional view of the improved SOI NMOSET of FIGS. 3A-3B .
- FIG. 3H is a simplified top view schematic of an SOI NMOSFET illustrating a region of increased threshold voltage that can occur in prior art MOSFETs and in some embodiments of the improved SOI MOSFET due to manufacturing processes.
- FIG. 3I is a plot of inversion channel charge as a function of applied gate voltage when a region of increased threshold voltage is present in an SOI MOSFET.
- FIG. 3J is a simplified top view schematic of an improved SOI NMOSFET adapted to control accumulated charge and configured in a “T-gate” configuration.
- FIG. 3K is a simplified top view schematic of an improved SOI NMOSFET adapted to control accumulated charge and configured in an “H-gate” configuration.
- FIG. 4A is a simplified schematic of an improved SOI NMOSFET adapted to control accumulated charge embodied as a four terminal device.
- FIG. 4B is a simplified schematic of an improved SOI NMOSFET adapted to control accumulated charge, embodied as a four terminal device, wherein an accumulated charge sink (ACS) terminal is coupled to a gate terminal.
- ACS accumulated charge sink
- FIG. 4C is a simplified schematic of an improved SOI NMOSFET adapted to control accumulated charge, embodied as a four terminal device, wherein an accumulated charge sink (ACS) terminal is coupled to a gate terminal via a diode.
- ACS accumulated charge sink
- FIG. 4D is a simplified schematic of an improved SOI NMOSFET adapted to control accumulated charge, embodied as a four terminal device, wherein an accumulated charge sink (ACS) terminal is coupled to a control circuit.
- ACS accumulated charge sink
- FIG. 4E is a simplified schematic of an exemplary RF switch circuit implemented using the four terminal ACC NMOSFET of FIG. 4D , wherein the ACS terminal is driven by an external bias source.
- FIG. 4F is a simplified schematic of an improved SOI NMOSFET adapted to control accumulated charge, embodied as a four terminal device, wherein an accumulated charge sink (ACS) terminal is coupled to a clamping circuit.
- ACS accumulated charge sink
- FIG. 4G is a simplified schematic of an improved SOI NMOSFET adapted to control accumulated charge, embodied as a four terminal device, wherein an accumulated charge sink (ACS) terminal is coupled to a gate terminal via a diode in parallel with a capacitor.
- ACS accumulated charge sink
- FIG. 4H shows plots of the off-state capacitance (C off ) versus applied drain-to-source voltages for SOI MOSFETs operated in the accumulated charge regime, wherein a first plot shows the off-state capacitance C off of a prior art SOI MOSFET, and wherein a second plot shows the off-state capacitance C off of the improved ACC SOI MOSFET made in accordance with the present teachings.
- FIG. 5A is a schematic of an exemplary prior art single pole, single throw (SPST) radio frequency (RF) switch circuit.
- SPST single pole, single throw
- RF radio frequency
- FIG. 5B is a schematic of an RF switch circuit adapted for improved performance using accumulated charge control, wherein the gate of a shunting SOI NMOSFET is coupled to an accumulated charge sink (ACS) terminal.
- ACS accumulated charge sink
- FIG. 5C is a schematic of an RF switch circuit adapted for improved performance using accumulated charge control, wherein the gate of a shunting SOI NMOSFET is coupled to an accumulated charge sink (ACS) terminal via a diode.
- ACS accumulated charge sink
- FIG. 5D is a schematic of an RF switch circuit adapted for improved performance using accumulated charge control, wherein the accumulated charge sink (ACS) terminal is coupled to a control circuit.
- ACS accumulated charge sink
- FIG. 6 is a schematic of an RF switch circuit including stacked MOSFETs, adapted for improved performance using accumulated charge control, wherein the accumulated charge sink (ACS) terminals of the shunting stacked MOSFETs are coupled to a control signal.
- ACS accumulated charge sink
- FIG. 7 shows a flowchart of an exemplary method of improving the linearity of an SOI MOSFET device using an accumulated charge sink in accordance with the present disclosure.
- FIG. 8 shows a simplified circuit schematic of an exemplary embodiment of an RF switch circuit made in accordance with the present disclosure, wherein the RF switch circuit includes drain-to-source resistors between the drain and source of the ACC MOSFETs.
- FIG. 9 shows a simplified schematic of an exemplary single-pole double-throw (SPDT) RF switch circuit made in accordance with the present disclosure, wherein drain-to-source resistors are shown across the switching ACC SOI MOSFETs.
- SPDT single-pole double-throw
- the MOSFET As described above in the background, no matter what mode of operation the MOSFET employs (i.e., enhancement mode or depletion mode), under some circumstances, when a MOSFET is operated in an off-state with a nonzero gate bias voltage applied with respect to the source and drain, an accumulated charge may occur under the gate. According to the present teachings, as described above when the MOSFET is in an off-state, and when carriers are present in the channel region having a polarity that is opposite the polarity of the source and drain carriers, the MOSFET is defined herein as operating in the accumulated charge regime.
- the inventors have observed that, when used in certain circuit implementations, MOSFETs operating in the accumulated charge regime exhibit undesirable non-linear characteristics that adversely impact circuit performance.
- the accumulated charge 120 ( FIG. 1 ) adversely affects the linearity of off-state SOI MOSFETs, and more specifically, it adversely affects the linearity of contributing capacitances to the drain-to-source capacitance (Cds).
- Cds is referred to as C off .
- the contributing capacitances to C off are described below in reference to FIG.
- FIG. 2A is a simplified schematic of an electrical model 200 showing the off-state impedance (or conversely, conductance) characteristics of the exemplary prior art SOI NMOSFET 100 of FIG. 1 . More specifically, the model 200 shows the impedance characteristics from the source 112 to the drain 116 when the NMOSFET 100 is operated in the off-state. Because the drain-to-source off-state impedance characteristic of the NMOSFET 100 is primarily capacitive in nature, it is referred to herein as the drain-to-source off-state capacitance (C off ).
- C off drain-to-source off-state capacitance
- the gate 108 is understood to be biased at a voltage Vg by a circuit (not shown) that has an impedance that is large compared to the impedances of the contributing capacitances described in reference to FIG. 2A .
- a circuit not shown
- this exemplary description may be modified for the case wherein the impedance of the circuit providing the Vg bias is not large compared to the impedances of the contributing capacitances.
- the junction between the source 112 and the body 114 (i.e., a source-body junction 218 ) of the off-state NMOSFET 100 can be represented by a junction diode 208 and a junction capacitor 214 , configured as shown.
- the junction between the drain 116 and the body 114 (i.e., the drain-body junction 220 ) of the off-state NMOSFET 100 can be represented by a junction diode 210 and a junction capacitor 216 , configured as shown.
- the body 114 is represented simply as an impedance 212 that is present between the source-body junction 218 and the drain-body junction 220 .
- a capacitor 206 represents the capacitance between the gate 108 and the body 114 .
- a capacitor 202 represents the capacitance between the source 112 and the gate 108 , and another capacitor 204 represents the capacitance between the drain 116 and the gate 108 .
- a substrate capacitance due to the electrical coupling between the source 112 and the drain 116 (through the insulating substrate 118 shown in FIG. 1 ) is taken to be negligibly small in the exemplary description set forth below, and therefore is not shown in the electrical model 200 of FIG. 2A .
- the body 114 is depleted of charge carriers.
- the body impedance 212 is analogous to the impedance of an insulator, and the electrical conductance through the body 114 is very small (i.e., the NMOSFET 100 is in the off-state). Consequently, the principal contributions to the drain-to-source off-state capacitance C off are provided by the capacitors 202 and 204 .
- the capacitors 202 and 204 are only slightly voltage dependent, and therefore do not significantly contribute to a nonlinear response that adversely affects harmonic generation and intermodulation distortion characteristics.
- the NMOSFET 100 operates within the accumulated charge regime, and the accumulated charge 120 is therefore present in the body 114 , mobile holes comprising the accumulated charge produce p-type conductivity between the source-body junction 218 and the drain-body junction 220 .
- the accumulated charge 120 produces an impedance between the source-body junction 218 and the drain-body junction 220 that is significantly less than the impedance between the junctions in the absence of the accumulated charge. If a Vds voltage is applied between the drain 116 and the source 112 , the mobile holes redistribute according to the electrical potentials that result within the body 114 .
- DC and low-frequency current flow through the SOI NMOSFET 100 is prevented by the diode properties of the source-body junction 218 and the drain-body junction 220 , as represented by the junction diodes 208 and 210 , respectively. That is, because the junction diodes 208 and 210 are anti-series (i.e., “back-to-back”) in this case, no DC or low-frequency currents flow through the SOI NMOSFET 100 . However, high-frequency currents may flow through the SOI NMOSFET 100 via the capacitances of the source-body junction 218 and the drain-body junction 220 , as represented by the junction capacitors 214 and 216 , respectively.
- the junction capacitors 214 and 216 are voltage dependent because they are associated with junctions between n-type and p-type regions. This voltage dependence results from the voltage dependence of the width of the depletion region of the junction between the n-type and p-type regions. As a bias voltage is applied to the NMOSFET, the width of the depletion region of the junction between the n-type and p-type regions is varied. Because the capacitance of the junction depends on the width of the junction depletion region, the capacitance also varies as a function of the bias applied across the junction (i.e., the capacitance is also voltage dependent).
- capacitors 202 and 204 may also have a voltage dependence caused by the presence of the accumulated charge 120 .
- electric field regions e.g., electric field regions 122 and 124 described above with reference to FIG. 1
- An additional non-linear effect may occur due to a direct capacitance (not shown) between the source 112 and the drain 116 .
- this direct capacitance would usually be expected to be negligible for most SOI MOSFETs, it may contribute for SOI MOSFETs having very short spacing between the source and drain.
- the contribution of this direct capacitance to C off is also voltage-dependent in the presence of an accumulated charge, for reasons that are analogous to the voltage dependencies of the capacitors 202 and 204 as described above.
- IMD intermodulation distortion
- the relative contributions of these effects are complex, and depend on fabrication processes, biases, signal amplitudes, and other variables.
- those skilled in the electronic device design arts shall understand from the teachings herein that reducing, removing, or otherwise controlling the accumulated charge provides an overall improvement in the nonlinear behavior of C off .
- the body impedance 212 is significantly decreased in the presence of the accumulated charge 120 , the magnitude of C off may be increased when the FET operates in the accumulated charge regime. Reducing, removing, or otherwise controlling the accumulated charge also mitigates this effect.
- the accumulated charge does not accumulate in the body in an instant as soon as the FET transitions from an on-state (conducting state) to an off-state (non-conducting state). Rather, when the FET transitions from the on-state to the off-state, it begins to accumulate charge in the body of the MOSFET, and the amount of accumulated charge increases over time. The accumulation of the accumulated charge therefore has an associated time constant (i.e., it does not instantly reach a steady-state level of accumulated charge). The accumulated charge accumulates slowly in the FET body. The depleted FET has a C off associated with it which is increased with an increasing amount of accumulated charge.
- RF switch linearity is an important design parameter in many applications. Improved switch linearity leads to improved suppression of harmonic and intermodulation (IM) distortion of signals processed by the switch. These improved switch characteristics can be critically important in some applications such as use in cellular communication devices.
- the well known GSM cellular communication system standard imposes stringent linearity, harmonic and intermodulation suppression, and power consumption requirements on front-end components used to implement GSM cell phones.
- One exemplary GSM standard requires that all harmonics of a fundamental signal be suppressed to below ⁇ 30 dBm at frequencies up to 12.75 GHz. If harmonics are not suppressed below these levels, reliable cell phone operation can be significantly adversely impacted (e.g., increased dropped calls or other communication problems may result due to harmonic and intermodulation distortion of the transmit and receive signals).
- the RF switching function is generally implemented in the cell phone front-end components, improvements in the RF switch linearity, harmonic and intermodulation suppression, and power consumption performance characteristics is highly desirable. A description of how the non-linear behavior of the off-state capacitance C off of the prior art MOSFETs adversely affects these RF switch characteristics is now described with reference to FIG. 2B .
- FIG. 2B illustrates an exemplary simplified RF switch circuit 250 implemented using prior art MOSFETs such as the prior art SOI NMOSFET 100 described above with reference to FIG. 1 .
- MOSFETs such as the prior art SOI NMOSFET 100 described above with reference to FIG. 1 .
- FIG. 2B illustrates an exemplary simplified RF switch circuit 250 implemented using prior art MOSFETs such as the prior art SOI NMOSFET 100 described above with reference to FIG. 1 .
- the prior art RF switch 250 includes a single “pass” or “switching” MOSFET 254 operatively coupled to five shunting MOSFETs 260 a- 260 e.
- the MOSFET 254 acts as a pass or switching transistor and is configured, when enabled, to selectively couple an RF input signal (applied to its drain, for example) to an RF antenna 258 via a transmission path 256 .
- the shunting MOSFETs, 260 a- 260 e when enabled, act to alternatively shunt the RF input signal to ground.
- the switching MOSFET 254 is selectively controlled by a first switch control signal (not shown) coupled to its gate, and the shunting MOSFETs, 260 a- 260 e are similarly controlled by a second switch control signal (not shown) coupled to their gates.
- the switching MOSFET 254 is thereby enabled when the shunting MOSFETs 260 a- 260 e are disabled, and vice versa. As shown in the exemplary embodiment of the RF switch 250 of FIG. 2B , the switching MOSFET 254 is enabled by applying a gate bias voltage of +2.5V (via the first switch control signal). The shunting MOSFETs 260 a- 260 e are disabled by applying a gate bias voltage of ⁇ 2.5V (via the second switch control signal).
- the RF signal 252 propagates through the switching MOSFET 254 , through the transmission path 256 , and to the antenna 258 .
- the shunting MOSFETS 260 a- 260 e comprise prior art SOI (or SOS) MOSFETs, such as the SOI NMOSFET 100 ( FIG. 1 )
- an accumulated charge can occur in the SOI MOSFET bodies (i.e., when the SOI MOSFETs operate in the accumulated charge regime as described above).
- the accumulated charge can produce nonlinear behavior in the off-state capacitance C off of the SOI MOSFETs when AC voltages are applied to the MOSFETs.
- the RF signal applies time varying source-to-drain bias voltages to the SOI MOSFETs 260 a- 260 e.
- the time varying source-to-drain bias voltages creates movement of the accumulated charge within the channel regions of the SOI MOSFETs 260 - 260 e.
- the movement of the accumulated charge within the channel regions of the SOI MOSFETs causes variations in the drain-to-source off-state capacitance of the SOI MOSFETs 260 a- 260 e. More specifically, the movement of the accumulated charge within the channel regions causes a voltage dependence of the drain-to-source off-state capacitance as described above with reference to FIG. 2A .
- the voltage dependent variations in the off-state capacitance of the SOI MOSFETs 260 a- 260 e is the dominant cause of harmonic distortion and IMD of the RF signal as it propagates through the RF switch 250 .
- harmonic distortion and IMD of the RF signal is a major disadvantage of the prior art RF switch circuits implemented using the prior art SOI MOSFET devices.
- harmonics and IMD of the RF signal must be suppressed to levels that heretofore have been difficult or impossible to achieve using prior art SOI MOSFET devices.
- prior art switches typically have only a 6 dB margin to the GSM third order harmonics suppression requirement of less than ⁇ 30 dBm.
- Very low even order harmonic distortion is also desirable in GSM systems as the second order harmonic of the GSM transmit band also resides in the DCS receive band. Suppression of odd order (e.g., third order) harmonics of the RF signal, however, is desirable and improvements in that regard are needed.
- BVDSS drain-to-source breakdown voltage
- floating-body FETs demonstrate drain-to-source breakdown voltage problems, also known as BVDSS, wherein the drain-to-source “punch-through” voltage is reduced by a parasitic bipolar action.
- the parasitic bipolar action is caused when holes are generated in the channel and the holes have nowhere to dissipate (i.e., because the body is floating, the holes have no means for escaping the body).
- the potential of the MOSFET body is increased, which effectively reduces the threshold voltage.
- this condition causes the MOSFET device to experience increased leakage, thereby generating more holes in the body, and thereby exacerbating the BVDSS problem (as a result of this positive feedback condition).
- the present disclosed method and apparatus for improving linearity of SOI (and SOS) MOSFET devices overcomes the above-described disadvantages of the prior art.
- the accumulated charge is recognized as a major source of harmonic distortion, IMD and compression/saturation in off-state SOI MOSFET devices, and in circuits (such as RF circuits) implemented with these devices, it becomes clear that reduction, removal, and/or control of the accumulated charge improves the harmonic suppression characteristics of these devices.
- reduction, removal, and/or control of the accumulated charge also improve the BVDSS performance characteristics by preventing the parasitic bipolar action from occurring. Improvements in BVDSS lead to consequent improvements in device linearity.
- Several exemplary structures and techniques for controlling the accumulated charge in SOI MOSFETs are described in detail in the next section.
- the present disclosure describes methods and apparatuses for improving semiconductor device linearity (e.g., reducing adverse harmonic distortion and IMD effects) in SOI MOSFETs.
- the method and apparatus improves the linearity and controls the harmonic distortion and IMD effects of the MOSFET devices by reducing the accumulated charge in the bodies of the MOSFET devices.
- the present method and apparatus reduces or otherwise controls the accumulated charge in the MOSFET bodies using an accumulated charge sink (ACS) that is operatively coupled to the MOSFET body.
- ACS accumulated charge sink
- the present method and apparatus entirely removes all of the accumulated charge from the bodies of the MOSFET devices.
- the MOSFET is biased to operate in an accumulated charge regime
- the ACS is used to entirely remove, reduce, or otherwise control, the accumulated charge and thereby reduce harmonic distortions and IMD that would otherwise result.
- Linearity is also improved in some embodiments by removing or otherwise controlling the accumulated charge thereby improving the floating body MOSFET BVDSS characteristics.
- MOSFETs fabricated on Semiconductor-On-Insulator (“SOI”) and Semiconductor-On-Sapphire (“SOS”) substrates.
- SOI Semiconductor-On-Insulator
- SOS Semiconductor-On-Sapphire
- the present teachings can be used in the implementation of MOSFETs using any convenient semiconductor-on-insulator technology.
- inventive MOSFETs described herein can be implemented using compound semiconductors fabricated on insulating substrates, such as GaAs MOSFETs.
- the present method and apparatus may also be applied to silicon-germanium (SiGe) SOI MOSFETs.
- the present disclosure is particularly applicable to FETs and associated applications benefiting from a fully depleted channel when the FET is operated in the off-state, wherein an accumulated charge may result.
- the disclosed method and apparatus for use in improving the linearity of MOSFETs also finds applicability for use with partially depleted channels.
- the doping and dimensions of the body vary widely.
- the body comprises silicon having a thickness of approximately 100 angstroms to approximately 2,000 angstroms.
- dopant concentration within the FET bodies ranges from no more than that associated with intrinsic silicon to approximately 1 ⁇ 10 18 active dopant atoms per cm 3 , resulting in fully-depleted transistor operation.
- dopant concentration within the FET bodies ranges from 1 ⁇ 10 18 to 1 ⁇ 10 19 active dopant atoms per cm 3 and/or the silicon comprising the body ranges from a thickness of 2000 angstroms to many micrometers, resulting in partially-depleted transistor operation.
- the present disclosed method and apparatus for use in improving linearity of MOSFETs can be used in MOSFETs implemented in a wide variety of dopant concentrations and body dimensions. The present disclosed method and apparatus therefore is not limited for use in MOSFETs implemented using the exemplary dopant concentrations and body dimensions as set forth above.
- accumulated charge within a FET body is reduced using control methodologies and associated circuitry. In one embodiment all of the accumulated charge is removed from the FET body. In other embodiments, the accumulated charge is reduced or otherwise controlled. In one embodiment, holes are removed from the FET body, whereas in another embodiment, electrons are removed from the FET body, as described below in more detail. By removing holes (or electrons) from the FET body using the novel and nonobvious teachings of the present disclosure, voltage induced variations in the parasitic capacitances of the off-state FETs are reduced or eliminated, thereby reducing or eliminating nonlinear behavior of the off-state FETs. In addition, as described above with reference to FIG.
- Accumulated charge control not only facilitates a beneficial overall reduction in the FET off-state capacitance C off (as described above with reference to FIG. 2A and below with reference to FIG. 4H ), it also facilitates a reduction in C off variations that can occur over time in the presence of a time varying V ds bias voltage.
- a reduction of undesirable harmonics generation and intermodulation distortion in RF switch circuits is obtained using SOI MOSFETs made in accordance with the present disclosure.
- Improved SOI MOSFET power handling, linearity, and performance are achieved by devices made in accordance with the present teachings. While the methods and apparatuses of the present disclosure are capable of fully removing accumulated charge from the FET bodies, those skilled in the electronic device design arts shall appreciate that any reduction of accumulated charge is beneficial.
- SOI systems include any semiconductor architecture employing semiconductor-containing regions positioned above an underlying insulating substrate. While any suitable insulating substrate can be used in a SOI system, exemplary insulating substrates include silicon dioxide (e.g., a buried oxide layer supported by a silicon substrate, such as that known as Separation by Implantation of Oxygen (SIMOX)), bonded wafer (thick oxide), glass, and sapphire. As noted above, in addition to the commonly used silicon-based systems, some embodiments of the present disclosure may be implemented using silicon-germanium (SiGe), wherein the SiGe is used equivalently in place of Si.
- SiGe silicon-germanium
- an ACS is used to remove or otherwise control accumulated charge (referenced as 120 in FIG. 1 described above) from the MOSFETs when the MOSFETs are configured to operate in the accumulated charge regime.
- SOI or SOS
- ACC Accumulated Charge Control
- the ACC MOSFETs are useful in improving performance of many circuits, including RF switching circuits.
- FIGS. 3A-3K Various characteristics and possible configurations of the exemplary ACC MOSFETs are described in detail below with reference to FIGS. 3A-3K . This section also describes how the exemplary ACS implementations of the present disclosure differ from the body contacts of the prior art.
- FIG. 4A The ACC MOSFET is shown schematically embodied as a four-terminal device in FIG. 4A .
- FIGS. 4B-4G show various exemplary simple circuit configurations that can be used in removing the accumulated charge from the ACC MOSFET when it operates in an accumulated charge regime. The operation of the simplified circuit configurations is described in more detail below with reference to FIGS. 4A-4G .
- the improvement in off-state capacitance C off of the ACC MOSFETs, as compared with the off-state capacitance of the prior art SOI MOSFETs, is described below with reference to FIG. 4H .
- FIGS. 3A and 3B are simplified schematic diagrams of a top view of an Accumulated Charge Control (ACC) SOI NMOSFET 300 adapted to control accumulated charge 120 ( FIG. 1 ) in accordance with the present disclosure.
- a gate contact 301 is coupled to a first end of a gate 302 .
- a gate oxide (not shown in FIG. 3A but shown in FIG. 1 ) and a body 312 (shown in FIG. 3B ) are positioned under the gate 302 .
- a source 304 and a drain 306 comprise N+ regions.
- the ACC NMOSFET 300 includes an accumulated charge sink (ACS) 308 comprising a P ⁇ region.
- ACS accumulated charge sink
- the ACS 308 is coupled to and is in electrical communication with the body 312 which also comprises a P ⁇ region.
- An electrical contact region 310 provides electrical connection to the ACS 308 .
- the electrical contact region 310 comprises a P+ region. As shown in FIG. 3A , the electrical contact region 310 is coupled to and is in electrical communication with the ACS 308 .
- the electrical contact region 310 may be used to facilitate electrical coupling to the ACS 308 because in some embodiments it may be difficult to make a direct contact to a lightly doped region.
- the ACS 308 and the electrical contact region 310 may be coextensive.
- the electrical contact region 310 comprises an N+ region.
- the electrical contact region 310 functions as a diode connection to the ACS 308 , which prevents positive current flow into the ACS 308 (and also prevents positive current flow into the body 312 ) under particular bias conditions, as described below in more detail.
- FIG. 3B is an alternative top view of the ACC SOI NMOSFET 300 of FIG. 3A , illustrating the ACC NMOSFET 300 without its gate contact 301 , gate 302 , and gate oxide being visible. This view allows the body 312 to be visible.
- FIG. 3B shows the coupling of the ACS 308 to one end of the body 312 .
- the body 312 and the ACS 308 comprise a combined P ⁇ region that may be produced by a single ion-implantation step.
- the body 312 and ACS 308 comprise separate P ⁇ regions that are coupled together.
- the ACC NMOSFET 300 of FIGS. 3A and 3B can be implemented as an ACC PMOSFET simply by reversing the dopant materials used to implement the various FET component regions (i.e., replace p-type dopant material with n-type dopant material, and vice versa). More specifically, in an ACC PMOSFET, the source and drain comprise P+ regions, and the body comprises an N ⁇ region. In this embodiment, the ACS 308 also comprises an N ⁇ region. In some embodiments of the ACC PMOSFET, the electrical contact region 310 may comprise an N+ region. In other embodiments of the ACC PMOSFETs, the region 310 comprises a P+ region, which functions as a diode connection to the ACS 308 and thereby prevents current flow into the ACS 308 under particular bias conditions.
- the ACS 308 used to implement ACC SOI MOSFETs includes novel features in structure, function, operation and design that distinguish it from the so-called “body contacts” (also sometimes referred to as “body ties”, usually when the “body contact” is directly connected to the source) that are well known in the prior art.
- Exemplary references relating to body contacts used in prior art SOI MOSFETs include the following: (1) F. Hameau and O. Rozeau, Radio-Frequency Circuits Integration Using CMOS SOI 0.25 ⁇ m Technology,” 2002 RF IC Design Workshop Europe, 19-22 Mar. 2002, Grenoble, France; (2) J. R. Cricci et al., “Silicon on Sapphire MOS Transistor,” U.S. Pat. No. 4,053,916, Oct. 11, 1977; (3) O. Rozeau et al., “SOI Technologies Overview for Low-Power Low-Voltage Radio-Frequency Applications,” Analog Integrated Circuits and Signal Processing, 25, pp.
- applications such as RF switch circuits, may use SOI MOSFETs operated with off-state bias voltages, for which accumulated charge may result.
- the SOI MOSFETs are defined herein as operating within the accumulated charge regime when the MOSFETs are biased in the off-state, and when carriers having opposite polarity to the channel carriers are present in the channel regions of the MOSFETs.
- the SOI MOSFETs may operate within the accumulated charge regime when the MOSFETs are partially depleted yet still biased to operate in the off-state.
- Significant benefits in improving nonlinear effects on source-drain capacitance can be realized by removing or otherwise controlling the accumulated charge according to the present teachings.
- the ACS 308 operates effectively to remove or otherwise control the accumulated charge from the SOI NMOSFET 300 using a high impedance connection to and throughout the body 312 .
- High impedance ACSs may be used because the accumulated charge 120 is primarily generated by phenomena (e.g., thermal generation) that take a relatively long period of time to produce significant accumulated charge. For example, a typical time period for producing non-negligible accumulated charge when the NMOSFET operates in the accumulated charge regime is approximately a few milliseconds or greater. Such relatively slow generation of accumulated charge corresponds to very low currents, typically less than 100 nA/mm of transistor width. Such low currents can be effectively conveyed even using very high impedance connections to the body.
- the ACS 308 is implemented with a connection having a resistance of greater than 10 6 ohms. Consequently, the ACS 308 is capable of effectively removing or otherwise controlling the accumulated charge 120 even when implemented with a relatively high impedance connection, relative to the low impedance prior art body contacts.
- the relative rates for electron-hole pair generation by impact ionization versus the pair generation processes causing accumulated charge can be estimated from the roll-off frequencies for the two phenomena.
- reference (3) cited above indicates roll-off frequencies for impact ionization effects in the range of 10 5 Hz.
- a roll-off frequency for the accumulated charge effects has been observed to be in the range of 10 3 Hz or less, as indicated by recovery times for odd harmonics.
- impact ionization primarily occurs when the SOI MOSFET operates in an on-state
- the effects of impact ionization can be amplified by on-state transistor operation.
- Low impedance body contacts to and throughout a body region is even more critical in these environments in order to control the effects of impact ionization under the on-state conditions.
- the ACS 308 of the present teachings removes or otherwise controls the accumulated charge only when the ACC SOI MOSFET operates in the accumulated charge regime.
- the FET is in the off-state in this regime, so there is no requirement to remove impact ionization as amplified by an on-state FET. Therefore, a high impedance ACS 308 is perfectly adequate for removing the accumulated charge under these operating conditions.
- the prior art requirements for low impedance body connections results in numerous problems of implementation that are overcome by the present teachings, as described below in more detail.
- the ACS 308 may be implemented with much lower source-to-drain parasitic capacitance as compared to the body contacts of the prior art.
- the above-described low impedance connection to the SOI MOSFET body required of the prior art body contacts necessitates proximity of the contacts to the entire body. This may require a plurality body contact “fingers” that contact the body at different locations along the body.
- the low impedance connection to the body also necessitates proximity of the prior art body contacts to the source and drain. Because of parasitic capacitances produced by such body contacts, the cited prior art references teach away from the use of such structures for many high frequency applications such as RF.
- the ACS 308 of the present disclosure may be positioned a selected distance away from the source 304 and the drain 306 , and the ACS 308 may also be coupled to the body 312 at a first distal end of the body 312 (shown in FIGS. 3A and 3B ). Arranged in this manner, the ACS 308 makes minimal contact (as compared to the prior art body contacts that may contact the body at many locations along the body) with the body 312 .
- This configuration of the ACS 308 with the MOSFET eliminates or greatly reduces the parasitic capacitances caused by a more proximate positioning of the ACS 308 relative to the source, drain, and body.
- the ACS 308 may be implemented in SOI MOSFETs operated with a depleted channel. In general, the cited prior art references teach away from the use of body contacts for this environment (see, e.g., reference (3), cited above).
- the prior art does not teach how to effectively implement very large body widths (i.e., much greater than approximately 10 ⁇ m).
- the ACS 308 of the present disclosed device may be implemented in SOI MOSFETs having relatively large body widths. This provides improvements in on-state conductance and transconductance, insertion loss and fabrication costs, particularly for RF switch devices. According to the prior art teachings cited above, larger body widths adversely affect the efficient operation of body contacts because their impedances are necessarily thereby increased.
- a plurality of fingers may be used to contact the body at different locations, the plurality of fingers adversely affects parasitic source-to-drain capacitances, as described above.
- the present disclosure provides novel MOSFET devices, circuits and methods that overcome the limitations according to the prior art teachings as cited above.
- FIG. 3C is a cross-sectional perspective schematic of an ACC SOI NMOSFET 300 ′ adapted to control accumulated charge in accordance with the disclosed method and apparatus.
- the ACC NMOSFET 300 ′ includes four terminals that provide electrical connection to the various FET component regions.
- the terminals provide means for connecting external integrated circuit (IC) elements (such as metal leads, not shown) to the various FET component regions.
- IC integrated circuit
- Three of the terminals shown in FIG. 3C are typically available in prior art FET devices.
- the ACC NMOSFET 300 ′ includes a gate terminal 302 ′ that provides electrical connection to the gate 302 .
- the ACC NMOSFET 300 ′ includes source and drain terminals 304 ′, 306 ′ that provide electrical connection to the source 304 and drain 306 , respectively.
- the terminals are coupled to their respective FET component regions (i.e., gate, drain and source) via so-called “ohmic” (i.e., low resistance) contact regions.
- “ohmic” i.e., low resistance
- the ACC NMOSFET 300 ′ is adapted to control accumulated charge when the NMOSFET operates in the accumulated charge regime.
- the ACC NMOSFET 300 ′ includes a fourth terminal that provides electrical connection to the body 312 , and thereby facilitates reduction (or other control) of the accumulated charge when the FET 300 ′ operates in the accumulated charge regime.
- the ACC NMOSFET includes a “body” terminal, or Accumulated Charge Sink (ACS) terminal 308 ′.
- the ACS terminal 308 ′ provides an electrical connection to the ACS 308 (not shown in FIG.
- FIG. 3C but shown in FIGS. 3A and 3B ) and to the body 312 .
- the ACS terminal 308 ′ is shown in FIG. 3C as being physically coupled to the body 312 , those skilled in the electronic design arts shall understand that this depiction is for illustrative purposes only.
- the direct coupling of the ACS terminal 308 ′ to the body 312 shown in FIG. 3C illustrates the electrical connectivity (i.e., not the physical coupling) of the terminal 308 ′ with the body 312 .
- the other terminals i.e., terminals 302 ′, 304 ′ and 306 ′
- FIG. 3C are also shown in FIG. 3C as being physically coupled to their respective FET component regions.
- the ACS terminal 308 ′ provides the electrical connection to the body 312 via coupling to the ACS 308 via the electrical contact region 310 .
- the present disclosure also contemplates embodiments where the coupling of the ACS terminal 308 ′ is made directly to the body 312 (i.e., no intermediate regions exist between the ACS terminal 308 ′ and the body 312 ).
- the ACC NMOSFET 300 ′ when the ACC NMOSFET 300 ′ is biased to operate in the accumulated charge regime (i.e., when the ACC NMOSFET 300 ′ is in the off-state, and there is an accumulated charge 120 of P polarity (i.e., holes) present in the channel region of the body 312 ), the accumulated charge is removed or otherwise controlled via the ACS terminal 308 ′.
- the charge 312 can be removed or otherwise controlled by applying a bias voltage (V b (for “body”) or V ACS (ACS bias voltage)) to the ACS terminal 308 ′.
- the ACS bias voltage V ACS applied to the ACS terminal 308 ′ may be selected to be equal to or more negative than the lesser of the source bias voltage Vs and drain bias voltage Vd. More specifically, in some embodiments, the ACS terminal 308 ′ can be coupled to various accumulated charge sinking mechanisms that remove (or “sink”) the accumulated charge when the FET operates in the accumulated charge regime. Several exemplary accumulated charge sinking mechanisms and circuit configurations are described below with reference to FIGS. 4A-5D .
- the ACC SOI NMOSFET 300 ′ of FIG. 3C can be biased to operate in the accumulated charge regime by applying specific bias voltages to the various terminals 302 ′, 304 ′, and 306 ′.
- the source and drain bias voltages (Vs and Vd, respectively) are zero (i.e., the terminals 304 ′ and 306 ′ are connected to ground).
- the ACC NMOSFET 300 ′ operates in the off-state. If the ACC NMOSFET 300 ′ continues to be biased in the off-state, the accumulated charge (holes) will accumulate in the body 312 .
- the accumulated charge can be removed from the body 312 via the ACS terminal 308 ′.
- the ACS terminal 308 ′ is coupled to the gate terminal 302 ′ (thereby ensuring that the same bias voltages are applied to both the gate (Vg) and the body (shown in FIG. 3C as “Vb” or “V ACS ”).
- bias voltages can be applied to the four device terminals while still employing the techniques of the present disclosed method and apparatus.
- the ACC SOI NMOSFET 300 ′ is biased to operate in the accumulated charge regime, the accumulated charge can be removed or otherwise controlled by applying a bias voltage V ACS to the ACS terminal 308 ′, and thereby remove the accumulated charge from the body 312 .
- V th is negative by definition.
- both the Vs and Vd bias voltages comprise zero volts (i.e., both terminals tied to circuit ground node)
- a gate bias Vg applied to the gate terminal 302 ′ is sufficiently negative to V th (for example, Vg is more negative than approximately ⁇ 1 V relative to V th )
- holes may accumulate under the gate oxide 110 thereby becoming the accumulated charge 120 .
- the voltage V ACS applied to the ACS 308 may be selected to be equal to or more negative than the lesser of Vs and Vd.
- the source and drain bias voltages, Vs and Vd may comprise voltage other than zero volts.
- the gate bias voltage Vg must be sufficiently negative to both Vs and Vd (in order for Vg to be sufficiently negative to V th , for example) in order to bias the NMOSFET in the off-state.
- the ACS bias voltage V ACS applied to the ACS terminal 308 ′ may be selected to be equal to or more negative than the lesser of Vs and Vd.
- V ACS should, in the exemplary embodiments, be equal to or more negative than the lesser of Vs and Vd.
- Vs, Vd, Vg and V ACS bias voltages may be used when the ACC MOSFET comprises a PMOSFET device. Because the prior art body contacts are typically tied to the source, this implementation cannot be effected using the prior art body contact approach.
- FIG. 3D is a simplified schematic diagram of a top view of an ACC SOI NMOSFET 300 ′′ adapted to control accumulated charge 120 ( FIG. 1 ) in accordance with the present disclosure.
- FIG. 3D shows the ACC NMOSFET 300 ′′ without its gate contact 301 , gate 302 , and gate oxide being visible.
- the ACC NMOSFET 300 ′′ of FIG. 3D is very similar in design to the ACC NMOSFET 300 described above with reference to FIGS. 3A and 3B .
- the ACC NMOSFET 300 ′′ includes a source 304 and drain 306 comprising N+ regions.
- the ACC NMOSFET 300 ′′ also includes an accumulated charge sink (ACS) 308 comprising a P ⁇ region. As shown in FIG. 3D , the P ⁇ region that comprises the ACS 308 abuts (i.e., is directly adjacent) the body 312 , which also comprises a P ⁇ region. Similar to the ACC NMOSFET 300 , the ACC NMOSFET 300 ′′ includes an electrical contact region 310 that provides electrical connection to the ACS 308 . As noted above, in some embodiments, the electrical contact region 310 comprises a P+ region. In another embodiment, the electrical contact region 310 may comprise an N+ region (which thereby prevents positive current flow into the body 312 as noted above). As shown in FIG.
- ACS accumulated charge sink
- the electrical contact region 310 is formed in the ACC NMOSFET 300 ′′ directly adjacent the ACS 308 .
- the ACC SOI NMOSFET 300 ′′ functions to control accumulated charge similarly to the operation of the ACC NMOSFETs described above with reference to FIGS. 3A-3C .
- FIG. 3E is a simplified schematic diagram of a top view of an ACC SOI NMOSFET 300 ′′′ adapted to control accumulated charge in accordance with the present disclosure.
- the ACC NMOSFET 300 ′′′ is very similar in design and function to the ACC NMOSFETs described above with reference to FIGS. 3A-3D .
- FIG. 3E shows a dashed cross-sectional view line A-A′ taken along the approximate center of the NMOSFET 300 ′′.
- This cross-sectional view is used herein to describe structural and performance characteristics of some exemplary prior art MOSFETS and some embodiments of the ACC NMOSFET that may occur as a result of the fabrication processes. Details of this cross-sectional view A-A′ are now described with reference to FIG. 3F .
- View line A-A′ slices through the following component regions of the ACC NMOSFET 300 ′′′: the P+ electrical contact region 310 , the ACS 308 (shown in FIG. 3E , but not shown in FIG. 3F ), a P+ overlap region 310 ′, a gate oxide 110 , and a poly-silicon gate 302 .
- the region 310 is doped with p-type dopant material, proximate the P ⁇ body region, some additional P+ doping may be implanted (i.e., the p-type dopant material may overlap) into the P+ overlap region 310 ′ of the poly-silicon gate 302 .
- such overlapping is performed intentionally to ensure that all of the gate oxide 110 is completely covered by the P+ region (i.e., to ensure that no gap exists on the edge of the oxide 110 between the gate 302 and the P+ region 310 ). This, in turn, aids in providing a minimum impedance connection between the P+ region 310 and the body 312 .
- the present teachings encompass such embodiments described above, those skilled in the electronic device design and manufacturing arts shall recognize that such low-resistance connections are not required. Therefore, disadvantages associated with the embodiment shown in FIG. 3H , as described below in more detail, can be overcome by using other embodiments described herein (for example, the embodiments 300 and 300 ′′′′ described below with reference to FIGS. 3G and 3J , respectively), in which gaps are intentionally implemented between the P+ region 310 and the body 312 .
- the P+ overlap region 310 ′ overlaps the oxide 110 by approximately 0.2-0.7 microns.
- the remaining area over the gate oxide 110 and over the P ⁇ body is doped with n-type dopant material (i.e., it comprises an N+ region).
- an increased threshold voltage region is created in the NMOSFET 300 ′′′. More specifically, due to the P+ doping (in the P+ overlap region 310 ′) proximate the edge 340 of the gate 302 over the channel region of the body 312 , a region of increased threshold voltage is formed in that region of the MOSFET 300 ′′′. The effects of the region of increased threshold voltage are now described in more detail with reference to FIGS. 3H and 3I .
- FIG. 3I shows a plot 380 of inversion channel charge versus applied gate voltage for an ACC NMOSFET.
- the plot 380 shown in FIG. 3I illustrates one effect of the above-described increased threshold voltage that can occur in prior art MOSFETs, and in some embodiments of the present ACC NMOSFETs due to certain manufacturing processes.
- the increased threshold voltage region shown in FIG. 3H and described in more detail below, also occurs in prior art MOSFET designs due to the proximity of body ties to the FET body.
- the present disclosed method and apparatus can be used to reduce or eliminate the region of increased threshold voltage found in some prior art SOI MOSFET designs.
- FIG. 3H shows one embodiment of an ACC NMOSFET without its gate contact, gate, and gate oxide being visible.
- the MOSFET region of increased threshold voltage described above with reference to FIGS. 3E and 3F is shown in FIG. 3H as occurring in the region encompassed by the ellipse 307 .
- the region 307 of the ACC MOSFET shown in FIG. 3H effectively “turns on” after the rest of the ACC MOSFET channel region.
- the increased threshold voltage can be reduced by reducing the size of the region 307 . Eliminating the region 307 altogether eliminates the threshold voltage increase. Because the threshold voltage increase can increase harmonic and intermodulation distortion of the “on” state MOSFET, eliminating this effect improves MOSFET performance. The increased threshold voltage also has the detrimental effect of increasing the MOSFET on-resistance (i.e., the resistance presented by the MOSFET when it is in the on-state (conducting state), which detrimentally impacts the MOSFET insertion loss.
- the detrimental effects associated with threshold voltage increase are mitigated or overcome by positioning the P+ region 310 a selected distance away from an edge of the poly-silicon gate 302 .
- This approach is shown both in the top view of the ACC MOSFET 300 of FIG. 3A , and in the cross-sectional view of the ACC MOSFET 300 shown in FIG. 3G .
- the P+ region 310 does not extend all the way to the edge 340 of the poly-silicon gate 302 . This is in stark contrast to the embodiment 300 ′′′ shown in FIG. 3F , where the P+ region 310 ′ extends all the way to the gate edge 340 .
- the P+ region 310 By positioning the P+ region 310 a distance away from the gate edge 340 as shown in the embodiment 300 of FIG. 3G , no P+ region is positioned proximate the poly-silicon gate 302 (i.e., there is no P+ region present in the poly-silicon gate 302 ).
- This configuration of the P+ region 310 eliminates or greatly reduces the problems associated with threshold voltage increase as described above.
- the relatively high impedance of the ACS 308 P ⁇ region (shown in FIG. 3A ) between the P+ region 310 and the gate 302 does not adversely affect the performance of the ACC NMOSFET 300 .
- the accumulated charge can be effectively removed even using a relatively high impedance ACS connection.
- the threshold voltage increase is removed by positioning the P+ region 310 (and the ACS 308 ) a distance away from the body 312 . Because the electrical connectivity between the ACS 308 and the body 312 has relatively high impedance when the small region of P+ 310 is positioned a distance away from the body 312 , this approach is never taught or suggested by the body contact prior art references (which require low impedance contacts as described above). This improved embodiment is described next with reference to FIG. 3J .
- FIG. 3J is a simplified top view schematic of another embodiment of an ACC SOI NMOSFET 300 ′′′′ adapted to control accumulated charge and configured in a “T-gate” configuration.
- FIG. 3J shows the ACC NMOSFET 300 ′′′′ without its gate contact 301 , gate 302 , and gate oxide being visible.
- the gate (not shown in FIG. 3J ) and the body 312 are configured as “supporting” members of the “T-gate” configured ACC MOSFET 300 ′′′′ (i.e., they comprise the “bottom” portion of the “T-shaped” FET). These “supporting” members “support” the “supported” member of the T-gate configured MOSFET 300 ′′, which comprises the ACS 308 as shown in FIG.
- the ACS 308 comprises the “top” portion of the “T-shaped” FET.
- the ACC NMOSFET 300 ′′′′ includes a small P+ region 310 conjoined to an ACS 308 .
- the P+ region 310 (and thus the ACS external electrical connection) is disposed a selected distance away from the body 312 .
- the total impedance of the electrical connection from the body 312 , through the ACS 308 , and to the P+ region 310 is increased by positioning the P+ region 310 a selected distance away from the body 312 .
- the present ACC NMOSFET 300 ′′′′ works perfectly well to remove accumulated charge even using relatively high impedance ACS connections.
- the ACC NMOSFET 300 ′′′′ does not require low impedance ACS electrical connections in order to remove accumulated charge from the body 312 .
- an ACS connection of relatively large impedance may be used in practicing the present teachings, with corresponding improvements in NMOSFET performance as described above (e.g., reductions in parasitic capacitance as compared with prior art low impedance body contacts).
- a low impedance ACS connection may be used to practice the disclosed method and apparatus for use in improving linearity characteristics of SOI MOSFETs.
- the embodiment of FIG. 3J improves device performance owing to the fact that the small P+ region 310 is positioned a distance away from the body 312 . Because the small P+ region 310 is positioned a distance away from the body 312 , the threshold voltage increase is reduced or entirely eliminated, together with the consequent adverse performance effects described above.
- FIG. 3K is a simplified top view schematic of another embodiment of an ACC SOI NMOSFET 300 ′′′′′ adapted to control accumulated charge and configured in an “H-gate” configuration.
- FIG. 3K shows the ACC NMOSFET 300 ′′′′′ without its gate contact 301 , gate 302 , and gate oxide being visible.
- the ACC NMOSFET 300 ′′′′′ is very similar in design and function to the ACC NMOSFETs described above with reference to FIGS. 3A-3D and 3J . As shown in FIG.
- the ACC NMOSFET 300 ′′′′′ includes two ACSs, 308 and 308 ′′, disposed at opposite ends of the H-gate ACC NMOSFET 300 ′′′′′.
- P+ regions 310 and 310 ′′ are formed to abut their respective ACSs, 308 and 308 ′′, and provide electrical contact thereto.
- the accumulated charge is removed or otherwise controlled via the two ACSs 308 and 308 ′′.
- the ACSs 308 and 308 ′′ may also comprise much narrower (or wider) regions, and still function perfectly well to remove or otherwise control the accumulated charge. Also, in some embodiments, it is not necessary that the impedance of the ACS 308 matches the impedance of the ACS 308 ′′.
- the ACSs 308 and 308 ′′ may comprise different sizes and configurations (i.e., rectangular, square, or any other convenient shape), and may also be positioned at various distances away from the body 312 (i.e., not necessarily the same distance away from the body 312 ). As described above with reference to FIG. 3J , when the ACS 308 is positioned a selected distance away from the body 312 , the problems associated with threshold voltage increase are reduced or eliminated.
- the SOI NMOSFET 300 of FIGS. 3A and 3B may be implemented as a four terminal device, as illustrated schematically in FIG. 4A .
- a gate terminal 402 is electrically coupled to the gate contact 301 (e.g., FIG. 3A ) and is analogous to the gate terminal 302 ′ shown in FIG. 3C .
- the gate contact 301 is electrically coupled to the gate 302 (e.g., FIGS. 3A and 3C ).
- a source terminal 404 is electrically coupled to the source 304 (e.g., FIGS. 3A-3C ) and is analogous to the source terminal 304 ′ of FIG. 3C .
- a drain terminal 406 is electrically coupled to the drain 306 (e.g., FIGS. 3A-3C ) and is analogous to the drain terminal 306 ′ of FIG. 3C .
- the ACC NMOSFET 300 includes an ACS terminal 408 that is electrically coupled to the ACS 308 (e.g., see FIGS. 3A-3B , and FIGS. 3D, 3J-3K ) via the region 310 .
- the region 310 may be used in some embodiments to facilitate electrical coupling to the ACS 308 because, in some embodiments, it may be difficult to make a direct contact to a lightly doped region (i.e., the ACS 308 ).
- the ACS terminal 408 is analogous to the ACS terminal 308 ′ shown in FIG. 3C .
- the ACC SOI NMOSFET 300 of FIG. 4A may be operated using various techniques and implemented in various circuits in order to control accumulated charge present in the FET when it is operating in an accumulated charge regime.
- the gate and ACS terminals, 402 and 408 are electrically coupled together.
- the source and drain bias voltages applied to the terminals 404 and 406 may be zero.
- the ACC NMOSFET 300 operates in the accumulated charge regime. As described above with reference to FIG. 3C , for example, when the MOSFET operates in this regime, accumulated charge (holes) may accumulate in the body of the NMOSFET 300 .
- the accumulated charge can be removed via the ACS terminal 408 by connecting the ACS terminal 408 to the gate terminal 402 as shown.
- This configuration ensures that when the FET 300 is in the off-state, it is held in the correct bias region to effectively remove or otherwise control the accumulated charge.
- connecting the ACS terminal 408 to the gate ensures that the same bias voltages are applied to both the gate (Vg) and the body (shown in FIG. 3C as “Vb” or “V ACS ”).
- the bias voltage V ACS is the same as the gate voltage Vg in this embodiment, the accumulated charge is no longer trapped below the gate oxide (by attraction to the gate bias Vg) because it is conveyed to the gate terminal 402 via the ACS terminal 408 . The accumulated charge is thereby removed from the body via the ACS terminal 408 .
- Vs and Vd may comprise nonzero bias voltages.
- Vg must be sufficiently negative to both Vs and Vd in order for Vg to be sufficiently negative to V th to turn the NMOSFET 300 off (i.e., operate the NMOSFET 300 in the off-state).
- the NMOSFET 300 may enter the accumulated charge regime and thereby have accumulated charge present in the body.
- the voltage V ACS may also be selected to be equal to Vg by connecting the ACS terminal 408 to the gate terminal 402 , thereby conveying the accumulated charge from the body of the ACC NMOSFET, as described above.
- the ACC NMOSFET 300 comprises a depletion mode device.
- the threshold voltage, V th is, by definition, less than zero.
- Vs and Vd both at zero volts, when a gate bias Vg sufficiently negative to V th is applied to the gate terminal 402 (for example, Vg more negative than approximately ⁇ 1 V relative to V th ), holes may accumulate under the gate oxide and thereby comprise an accumulated charge.
- the voltage V ACS may also be selected to be equal to Vg by connecting the ACS terminal 408 to the gate terminal 402 , thereby conveying the accumulated charge from the ACC NMOSFET as described above.
- diodes formed at the edge of the device may become forward biased thereby allowing current to flow into the source and drain regions.
- this may introduce nonlinearity into the NMOSFET.
- the nonlinearity results because the current that flows as a result of the forward biased interface diodes comprises nonlinear current.
- Vgs and Vgd are reduced in that region of the device, the on resistance Ron at the edge of the device is increased.
- FIG. 4C Another exemplary simplified circuit using the improved ACC SOI NMOSFET 300 is shown in FIG. 4C .
- the ACS terminal 408 may be electrically coupled to a diode 410 , and the diode 410 may, in turn, be coupled to the gate terminal 402 .
- the ACS terminal voltage V ACS comprises the gate voltage plus a voltage drop across the diode 410 .
- the voltage drop across the diode 410 typically also is very low (e.g., ⁇ 500 mV, for example, for a typical threshold diode).
- the voltage drop across the diode 410 can be reduced to approximately zero by using other diodes, such as a 0Vf diode, for example. In one embodiment, reducing the voltage drop across the diode is achieved by increasing the diode 410 width.
- maintaining the ACS-to-source or ACS-to-drain voltage (whichever bias voltage of the two bias voltages is lower) increasingly negative, also improves the linearity of the ACC MOSFET device 300 .
- the diode 410 When the SOI NMOSFET 300 is biased in an on condition, the diode 410 is reverse-biased, thereby preventing the flow of positive current into the source and drain regions.
- the reverse-biased configuration reduces power consumption and improves linearity of the device.
- the circuit shown in FIG. 4C therefore works well to remove accumulated charge from the ACC MOSFET body when the FET is in the off-state and is operated in the accumulated charge regime. It also permits almost any positive voltage to be applied to the gate voltage Vg. This, in turn, allows the ACC MOSFET to effectively remove accumulated charge when the device operates in the off-state, yet assume the characteristics of a floating body device when the device operates in the on-state.
- exemplary operation of the simplified circuit shown in FIG. 4C is the same as the operation of the circuit described above with reference to FIG. 4B .
- the ACS terminal 408 may be coupled to a control circuit 412 as illustrated in the simplified circuit of FIG. 4D .
- the control circuit 412 may provide a selectable ACS bias voltage V ACS that selectively controls the accumulated charge (i.e., the accumulated charge 120 described above with reference to FIG. 1 ).
- V ACS selectable ACS bias voltage
- the ACS bias voltage V ACS is produced by a separate source that is independent of the ACC MOSFET device 300 . In the case of a switch (as described below in more detail with reference to FIG.
- the ACS bias voltage V ACS should be driven from a source having a high output impedance.
- a high output impedance source can be obtained using a large series resistor in order to ensure that the RF voltage is divided across the MOSFET and that the ACS bias voltage V ACS has Vds/2 “riding” on it, similarly to the gate voltage. This approach is described in more detail below with reference to FIG. 4E .
- the control circuit 412 may prevent positive current flow into the ACS terminal 408 by selectively maintaining an ACS bias voltage V ACS that is consistently negative with respect to both the source and drain bias voltages.
- the control circuit 412 may be used to apply an ACS bias voltage that is equal to or more negative than the lesser of Vs and Vd. By application of such an ACS bias voltage, the accumulated charge is thereby removed or otherwise controlled.
- the source and drain bias voltages applied to the terminals 404 and 406 may be zero. If the gate bias voltage (Vg) applied to the gate terminal 402 is sufficiently negative with respect to the source and drain bias voltages applied to the terminals 404 and 406 , and with respect to V th , (for example, if V th is approximately zero, and if Vg is more negative than approximately ⁇ 1 V) the ACC NMOSFET 300 operates in the accumulated charge regime, and the accumulated charge (holes) may accumulate in the body of the ACC NMOSFET 300 .
- Vg gate bias voltage
- the accumulated charge can be removed via the ACS terminal 408 by connecting the ACS terminal 408 to the control circuit 412 as shown.
- the ACS bias voltage V ACS that is applied to the ACS terminal 408 should be equal to or more negative than the gate voltage and more negative than the lesser of Vs and Vd. Because the accumulated charge 120 is conveyed to the bias voltage V ACS applied to the ACS terminal 408 by the control circuit 412 , the accumulated charge does not remain trapped under the gate oxide due to attraction to the gate bias voltage Vg.
- Vs and Vd may comprise bias voltages that are other than zero.
- Vg must be sufficiently negative to both Vs and Vd in order for Vg to be sufficiently negative to V th , in order to bias the NMOSFET 300 in the off-state. This allows the accumulation of accumulated charge under the gate oxide.
- the ACS bias voltage V ACS may be selected to be equal to or more negative than the lesser of Vs and Vd by connecting the ACS terminal 408 to the control circuit 412 to provide selected ACS bias voltages, thereby conveying the accumulated charge from the ACC NMOSFET 300 .
- V th is, by definition, less than zero.
- Vs and Vd both at zero volts, when a gate bias Vg sufficiently negative to V th is applied (for example, Vg more negative than approximately ⁇ 1 V relative to V th ), holes may accumulate under the gate oxide.
- the ACS bias voltage V ACS that is applied to the ACS terminal 408 may also be selected to be equal to or more negative than the lesser of Vs and Vd by connecting the ACS terminal 408 to the control circuit 412 and thereby provide the desired ACS bias voltages V ACS that are necessary to remove the accumulated charge from the ACC NMOSFET 300 .
- the ACS terminal 408 can be driven by a separate bias source circuit, as shown, for example, in the embodiment of FIG. 4E .
- the separate V ACS source has a high output impedance element 403 which ensures that the RF voltage is divided across the ACC NMOSFET 300 , and which further ensures that the voltage applied to the ACS terminal 408 has Vds/2 applied thereon, similar to the voltage Vgs that is applied to the gate terminal 402 .
- an inverter 405 is configured in series with the high output impedance element 403 and supplied by GND and ⁇ V DD .
- ⁇ V DD is readily derived from a convenient positive voltage supply. It could, however, comprise an even more negative voltage for improved linearity (i.e., it can be independent of the gate voltage).
- the circuit shown in FIG. 4C can be modified to include a clamping circuit configured in series with an ACS terminal 408 .
- a clamping circuit configured in series with an ACS terminal 408 .
- FIG. 4F Such an exemplary embodiment is shown in FIG. 4F .
- current that flows out of the ACC NMOSFET 300 , conveying the accumulated charge from the body of the ACC NMOSFET 300 , via the ACS terminal 408 is sufficiently high such that it causes problems in the biasing circuitry (i.e., under some conditions the ACS current is so high that the biasing circuitry cannot adequately sink the current flowing out of the body of the ACC NMOSFET 300 ).
- one exemplary embodiment solves this problem by interrupting the flow of ACS current out of the body of the ACC NMOSFET 300 , and thereby returning the ACC NMOSFET 300 to a floating body condition.
- a depletion-mode FET 421 is configured in series between the ACS terminal 408 and a diode 410 .
- the depletion-mode FET 421 includes a gate terminal that is electrically connected to the FET's source terminal.
- the depletion-mode FET 421 functions to clip or limit the current that flows from the ACS terminal 408 when the ACC MOSFET operates in the accumulated charge regime. More specifically, the depletion-mode FET 421 enters saturation upon reaching a predefined threshold. The current leaving the body of the ACC MOSFET is thereby limited by the saturation current of the FET 421 .
- the predefined saturation threshold may optionally be adjusted to change the point at which clamping occurs, such as by selecting a higher threshold voltage, which results in a lower maximum current and earlier clamping.
- the gate terminal 402 and the ACS terminal 408 follow Vds at half the rate (Vds/2) of Vds.
- Vds/2 the rate of Vds.
- Vgs may approach the threshold voltage Vth, resulting in increased Ids leakage current.
- Ids leakage current exits the ACS terminal 408 and can overwhelm associated circuitry (e.g., a negative voltage generator).
- the circuit shown in FIG. 4F solves or otherwise mitigates these problems. More specifically, by coupling the FET 421 in series between the ACS terminal 408 and the diode 410 , the current that exits the ACS terminal 408 is limited to the saturation current of the FET 421 .
- the simplified circuit shown in FIG. 4C can be modified to include an AC shorting capacitor placed in parallel with the diode 410 .
- the simplified circuit of FIG. 4G can be used to compensate for certain undesirable nonlinearities present in a full circuit application.
- nonlinearity characteristics existing in the diode 410 of FIG. 4C may introduce undesirable nonlinearities in a full circuit implementation.
- the diode is in place to provide DC bias conditions and is not intended to have any AC signals across it, it may be desirable in some embodiments to take steps to mitigate the effects of any AC signal present across the diode 410 .
- the circuit of FIG. 4C has been modified to include an AC shorting capacitor 423 wherein the AC shorting capacitor 423 is configured in parallel across the diode 410 .
- the AC shorting capacitor 423 is placed in parallel with the diode 410 to ensure that nonlinearities of the diode 410 are not excited by an AC signal.
- the AC shorting capacitor 423 does not impact the higher level full circuit, as the gate terminal 402 and the ACS terminal 408 typically have the same AC signal applied (i.e., AC equipotential).
- body nodes of a multi-finger FET implementation may be connected to one another (using, for example, metal or silicon), overlapping the source fingers.
- gate nodes may be are connected to one another (using, for example, metal or silicon) overlapping the drain fingers.
- S-B source and body
- D-G drain and gate
- FIG. 4H is a plot 460 of the off-state capacitance (C off ) versus an applied drain-to-source voltage of an SOI MOSFET when an AC signal is applied to the MOSFET (the plot 460 is relevant to an exemplary 1 mm wide MOSFET, though similar plots result using wider and narrower devices).
- a gate voltage equals ⁇ 2.5 Volts+Vd/2, and Vs equals 0.
- a first plot 462 shows the off-state capacitance C off of a typical prior art NMOSFET operating within the accumulated charge regime and thereby having an accumulated charge as described above with reference to FIG. 1 . As shown in FIG.
- a second plot 464 illustrates the off-state capacitance C off of an improved ACC SOI MOSFET made in accordance with the present teachings, wherein the accumulated charge is conveyed from the ACC MOSFET, thereby reducing, controlling and/or eliminating the accumulated charge from the ACC MOSFET body.
- the off-state capacitance C off shown in plot 464 of the ACC SOI MOSFET is not voltage-dependent (i.e., it is linear).
- the impedance 212 of the NMOSFET body 312 ( FIG. 3C , and shown as the MOSFET body 114 in the electrical model of FIG. 2A ) is increased to a very large value.
- This increase in the impedance 212 of the MOSFET body reduces the contribution to C off caused by the impedance of the junctions 218 and 220 ( FIG. 2A ), thereby reducing the overall magnitude of C off and the nonlinear effects associated with the impedances of the junctions 218 and 220 .
- Plot 464 illustrates how the present teachings advantageously reduce both the nonlinearity and overall magnitude of the off-state capacitance C off of the MOSFET.
- the reduced nonlinearity and magnitude of the off-state capacitance C off improves the performance of circuits using MOSFETs operating in an accumulated charge regime, such as RF switching circuits.
- Exemplary RF switching circuits implemented with the ACC MOSFETs described above with reference to FIGS. 4A-4G are now described with reference to FIGS. 5A-5D .
- FIG. 5A shows a schematic diagram of a single pole, single throw (SPST) RF switch circuit 500 in accordance with prior art.
- the RF switch circuit 500 is one example of a general class of well-known RF switch circuits. Similar RF switch circuits are described in the following co-pending and commonly assigned U. S. Applications and Patent: Provisional Application No. 60/651,736, filed Feb. 9, 2005, entitled “UNPOWERED SWITCH AND BLEEDER CIRCUIT:” application Ser. No. 10/922,135, filed Aug. 18, 2004, pending, which is a continuation application of application Ser. No. 10/267,531, filed Oct. 8, 2002, which issued Oct. 12, 2004 as U.S. Pat. No.
- a switching SOI NMOSFET 506 is adapted to receive an RF input signal “RFin” at an input terminal 502 .
- the switching SOI MOSFET 506 is electrically coupled to selectively couple the RFin input signal to an output terminal 504 (i.e., thereby convey an RF output signal Rfout at the output terminal 504 ).
- the switching SOI NMOSFET 506 is controlled by a first control signal C 1 that is conveyed by a control line 512 through a gate resistor 510 (optionally included for suppression of parasitic RF coupling).
- the control line 512 is electrically coupled to a control circuit 520 , which generates the first control signal C 1 .
- a shunting SOI NMOSFET 508 is adapted to receive the RF input signal RFin at its drain terminal, and to selectively shunt the input signal RFin to ground via an optional load resistor 518 .
- the shunting SOI NMOSFET 508 is controlled by a second control signal C 1 x which is conveyed by a control line 516 through a gate resistor 514 (optionally included for suppression of parasitic RF coupling and for purposes of voltage division).
- the control line 516 is electrically coupled to the control circuit 520 , which generates the second control signal C 1 x.
- switching and shunting are used interchangeably herein with the terms “switch” and “shunt”, respectively.
- the switching transistor 506 (and all of its analogous switching transistors described below in FIGS. 5B-5D, 6, 8, and 9 ) is also referred to herein as the “switch” transistor.
- the shunting transistor 508 (and all of its analogous shunting transistors described below in FIGS. 5B-5D, 6, 8, and 9 ) is also referred to herein as the “shunt” transistor.
- switch and “switching” (and similarly the terms “shunt” and “shunting”), when used to describe the RF switch circuit transistors, are used interchangeably herein. Further, as described below in more detail with reference to FIG. 6 , those skilled in the RF switching design and fabrication arts shall recognize that although the switch and shunt transistors are shown in FIGS. 5A-5D and FIG. 9 as comprising a single MOSFET, it shall be understood that they may comprise transistor groupings comprising one or more MOSFET transistors.
- RF input node 905 and RF input node 907 are described below as inputting RF signals RF 1 and RF 2 respectively.
- RFC common port 903 is described below as providing an RF common output signal.
- the RF switch is bidirectional, and that the previously described input ports function perfectly well as output ports, and vice versa.
- the RFC common port can be used to input an RF signal which is selectively output by the RF nodes 905 and 907 .
- the first and second control signals, C 1 and C 1 x, respectively, are generated so that the switching SOI NMOSFET 506 operates in an on-state when the shunting SOI NMOSFET 508 operates in an off-state, and vice versa.
- These control signals provide the gate bias voltages Vg to the gate terminals of the NMOSFETs 506 and 508 .
- the respective Vg must comprise a sufficiently large negative voltage so that the respective NMOSFET does not enter, or approach, an on-state due to the time varying applied voltages of the RF input signal RFin.
- the maximum power of the RF input signal RFin is thereby limited by the maximum magnitude of the gate bias voltage Vg (or, more generally, the gate-to-source operating voltage, Vgs) that the SOI NMOSFETs 506 and 508 can reliably sustain.
- Vgs gate bias voltage
- Vgs the gate bias voltage
- , where Vds Vd ⁇ Vs, and Vds(max) comprises the maximum Vds due to the high-power input signal voltage levels associated with the RF input signal RFin.
- Exemplary bias voltages for the switching and shunting SOI NMOSFETs 506 and 508 may include the following: with V th approximately zero volts, Vg, for the on-state, of +2.5 V, and Vg, for the off-state, of ⁇ 2.5 V.
- Vg approximately zero volts
- Vg for the on-state
- Vg for the off-state
- ⁇ 2.5 V the SOI NMOSFETs
- the improved ACC MOSFETs made in accordance with the present teachings can be used to improve circuit performance, especially as it is adversely affected by the accumulated charge.
- FIG. 5B is a schematic of an improved RF circuit 501 adapted for higher performance using the present accumulated charge reduction and control techniques.
- the switch circuit 501 differs from the prior art circuit 500 ( FIG. 5A ) in that the shunting NMOSFET 508 is replaced by a shunting ACC NMOSFET 528 made in accordance with the present teachings.
- the shunting ACC NMOSFET 528 is analogous to the ACC NMOSFET described above with reference to FIGS. 4A and 4B .
- the gate, source, drain and ACC terminals of the shunting ACC NMOSFET 528 are analogous to the respective terminals of the ACC NMOSFET 300 .
- the operation of the RF switch circuit 501 is very similar to the operation of the RF switch circuit 500 described above with reference to FIG. 5A .
- Exemplary bias voltages for the switching NMOSFET 526 and the shunting ACC NMOSFET 528 may include: with V th approximately zero, Vg, for the on-state, of +2.5 V, and Vg, for the off-state, of ⁇ 2.5 V.
- the SOI NMOSFETs may operate in an accumulated charge regime when placed into the off-state.
- the output signal RFout at the output terminal 505 will not be distorted by nonlinear behavior of the off-state capacitance C off of the improved shunting ACC NMOSFET 528 due to the accumulated charge.
- the shunting ACC NMOSFET 528 When the shunting ACC NMOSFET 528 operates in the accumulated charge regime, the accumulated charge is removed via the ACS terminal 508 ′. More specifically, because the gate terminal 502 ′ of the shunting ACC NMOSFET 528 is connected to the ACS terminal 508 ′, the accumulated charge is removed or otherwise controlled as described above in reference to the simplified circuit of FIG. 4B .
- the control of the accumulated charge improves performance of the switch 501 by improving the linearity of the off transistor, shunting ACC NMOSFET 528 , and thereby reducing the harmonic and intermodulation distortion of the RF output signal Rfout generated at the output terminal 505 .
- FIG. 5C is a schematic of another embodiment of an improved RF switch circuit 502 adapted for higher performance using the accumulated charge control techniques of the present disclosure.
- the switch circuit 502 differs from the prior art circuit 500 ( FIG. 5A ) in that the NMOSFET 508 is replaced by an ACC NMOSFET 528 made in accordance with the present teachings.
- the ACC NMOSFET 528 is analogous to the ACC NMOSFET 300 described above with reference to FIGS. 4A and 4C .
- the gate, source, drain and ACC terminals of the ACC NMOSFET 528 are analogous to the respective terminals of the ACC NMOSFETs 300 described above with reference to FIGS. 4A and 4C .
- the operation of the switch circuit 502 is very similar to the operations of the switch circuits 500 and 501 described above with reference to FIGS. 5A and 5B , respectively.
- Exemplary bias voltages for the NMOSFET 526 and the ACC NMOSFET 528 may include the following: with V th approximately zero volts, Vg, for the on-state, of +2.5 V, and Vg, for the off-state, of ⁇ 2.5 V.
- Vg approximately zero volts
- Vg for the on-state
- Vg for the off-state
- ⁇ 2.5 V the SOI NMOSFETs 526 , 528 may operate in an accumulated charge regime when placed into an off-state.
- the output signal RFout will not be distorted by nonlinear behavior of the off-state capacitance C off of the ACC NMOSFET 528 due to the accumulated charge.
- the gate terminal 502 ′ of the ACC NMOSFET 528 is connected to the ACS terminal 508 ′ via a diode 509 , the accumulated charge is entirely removed, reduced or otherwise controlled, as described above with reference to FIG. 4C . Similar to the improved switch 501 described above with reference to FIG. 5B , control of the accumulated charge improves performance of the switch 502 by improving the linearity of the off transistor, 528 , and thereby reducing the harmonic and intermodulation distortion of the RF output signal Rfout output of the RF output terminal 505 . Connection of the diode 509 as shown may be desired in some embodiments for suppression of positive current flow into the ACC NMOSFET 528 when it is biased into an on-state, as described above with reference to FIG. 4C .
- FIG. 5D is a schematic of another embodiment of an improved RF switch circuit 503 adapted for higher performance using the present accumulated charge control techniques.
- the switch circuit 503 differs from the prior art circuit 500 ( FIG. 5A ) in that the NMOSFET 508 of FIG. 5A is replaced by an ACC NMOSFET 528 made in accordance with the present teachings.
- the ACC NMOSFET 528 is analogous to the ACC NMOSFET described above with reference to FIGS. 4A and 4D .
- the operation of the switch circuit 503 is very similar to the operations of the switch circuits 500 , 501 and 502 described above with reference to FIGS. 5A-5C , respectively.
- Exemplary bias voltages for the NMOSFET 526 and the ACC NMOSFET 528 may include the following: with V th approximately zero volts, Vg, for the on-state, of +2.5 V, and Vg, for the off-state, of ⁇ 2.5 V.
- Vg approximately zero volts
- Vg for the on-state
- Vg for the off-state
- ⁇ 2.5 V the SOI NMOSFETs 526 , 528 may operate in an accumulated charge regime when placed into the off-state.
- the output signal RFout produced at the output terminal 505 will not be distorted by the nonlinear behavior of the off-state capacitance C off of the ACC NMOSFET 528 due to the accumulated charge.
- the accumulated charge is removed via the ACS terminal 508 ′. More specifically, because the ACS terminal 508 ′ of the ACC NMOSFET 528 is electrically coupled to the control circuit 520 via the control line 517 (i.e., controlled by the control signal “C 2 ” as shown), the accumulated charge can be eliminated, reduced or otherwise controlled by applying selected bias voltages to the ACS terminal 508 ′ as described above with reference to FIG. 4D .
- bias voltage signals can be applied to the ACS terminal for the purpose of reducing or otherwise controlling the accumulated charge.
- the specific bias voltages may be adapted for use in a particular application.
- the control of the accumulated charge improves performance of the switch 503 by improving the linearity of the off-state transistor, 528 , and thereby reducing the harmonic and intermodulation distortion of the RF output signal Rfout generated at the output terminal 505 .
- the switching SOI MOSFETs 526 are shown and described as implemented using SOI MOSFETs of the prior art (i.e., they do not comprise ACC MOSFETs and therefore do not have an ACS terminal).
- the prior art switching SOI MOSFETs 526 may be replaced, as desired or required, by ACC SOI MOSFETs made in accordance with the present disclosure.
- the RF switch comprises a single-pole double-throw RF switch.
- the switching SOI MOSFETs may comprise ACC SOI MOSFETs.
- Such an implementation prevents nonlinear behavior of the off-state switching SOI MOSFETs (which is turned off when it is not selected as an input “pole”) from detrimentally affecting the output of the RF signal as switched through the selected “pole”.
- Implementation of the RF switches using switching ACC MOSFETs reduces the magnitude, drift, and voltage dependency of the off capacitance C off of the switching transistors. Consequently, and as described above in more detail, the switch performance characteristics, such as its isolation, insertion loss and drift characteristics, are also improved. This implementation is described in more detail below with reference to the RF switch circuit shown in FIG. 9 . Many other examples will be apparent to those skilled in the arts of electronic circuits.
- the exemplary RF switches have been described as being implemented using ACC SOI NMOSFET devices, they can also be implemented using ACC SOI PMOSFET devices.
- single-pole single-throw, and single-pole double-throw RF switches have been described above as examples of RF switches implemented in accordance with the present teachings, the present application encompasses any variation of single-pole multi-throw, multi-pole single-throw, and multi-pole multi-throw RF switch configurations.
- Those skilled in the RF switch design and fabrication arts shall recognize and appreciate that the present teachings can be used in implementing any convenient RF switch configuration design.
- the switch circuits are implemented using a single SOI NMOSFET (e.g., the single SOI NMOSFET 506 of FIG. 5A , and the single SOI NMOSFET 526 of FIGS. 5B-5D ) that selectively couples or blocks (i.e., electrically opens the circuit connection) the RF input signal to the RF output.
- a single SOI NMOSFET e.g., the single SOI NMOSFET 508 of FIG. 5A , and ACC SOI NMOSFET 528 of FIGS.
- FIG. 6 An RF switch circuit 600 is analogous to the RF switch circuit 503 of FIG. 5D , wherein the single SOI NMOSFET 526 is replaced by a stack of SOI NMOSFETs 602 , 604 and 606 . Similarly, the single ACC SOI NMOSFET 528 is replaced by a stack of ACC SOI NMOSFETs 620 , 622 and 624 .
- the control signal C 2 is provided to the ACS terminals of the ACC SOI NMOSFETs 620 , 622 and 624 via optional resistors 626 , 628 , and 630 , respectively.
- the resistors 626 , 628 , and 630 may optionally be included in order to suppress parasitic RF signals between the stacked ACC SOI NMOSFETs 620 , 622 , and 624 , respectively.
- the RF switch circuit 600 operates analogously to the operation of the RF switch circuit 503 described above with reference to FIG. 5D .
- Three stacked ACC SOI NMOSFETs are shown in each ACC NMOSFET stack in the exemplary stacked RF switch circuit 600 of FIG. 6 .
- a plurality of three ACC NMOSFETs is shown for illustrative purposes only, however, those skilled in the integrated circuit design arts will understand that an arbitrary plurality may be employed according to particular circuit requirements such as power handling performance, switching speed, etc.
- a smaller or larger plurality of stacked ACC NMOSFETs may be included in a stack to achieve a desired operating performance.
- stacked RF switch circuits adapted for accumulated charge control, analogous to the circuits described above with reference to FIGS. 5B-5D , may also be employed. Implementations of such circuits shall be obvious from the teachings above to those skilled in the electronic device design arts, and therefore are not described further herein. Moreover, is shall be obvious to those skilled in the electronic device design arts that, although a symmetrically stacked (i.e., having an equal number of shunting and switching transistors) RF switch is shown in the stacked RF switch of FIG. 6 , the present inventive ACC method and apparatus is not so limited.
- the present teachings can be applied in implementing both symmetrically and asymmetrically stacked (having an unequal number of shunting and switching transistors) RF switches.
- the designer will readily understand how to use the ACC MOSFETs of the present disclosure in implementing asymmetrical, as well as symmetrical, RF switch circuits.
- FIG. 7 illustrates an exemplary method 700 of improving the linearity of an SOI MOSFET having an accumulated charge sink (ACS) in accordance with the present disclosure.
- the method 700 begins at a STEP 702 , whereat an ACC SOI MOSFET having an ACS terminal is configured to operate in a circuit.
- the ACS terminal may be operatively coupled to the gate of the SOI MOSFET (as described above with reference to FIGS. 4B, 4C, 5B and 5C ), or to a control circuit (as described above with reference to FIGS. 4D and 5D ).
- the ACS terminal may be operatively coupled to any convenient accumulated charge sinking mechanism, circuit, or device as is convenient to the circuit or system designer.
- the method then proceeds to a step 704 .
- the ACC SOI MOSFET is controlled, at least part of the time, so that it operates in an accumulated charge regime.
- the ACC MOSFET is operated in the accumulated charge regime by applying bias voltages that place the FET in an off-state condition.
- the ACC SOI MOSFET comprises an ACC SOI NMOSFET that is configured as part of a shunting circuit of an RF switch.
- the SOI NMOSFET may be operated in an accumulated charge regime after the shunting circuit is placed into an off-state by applying a negative bias voltage to the gate terminal of the ACC NMOSFET.
- the method then proceeds to a STEP 706 , whereat the accumulated charge that has accumulated in the channel region of the ACC MOSFET is removed or otherwise controlled via the ACS terminal.
- the accumulated charge is conveyed to another circuit terminal and is thereby reduced or otherwise controlled.
- One such exemplary circuit terminal that can be used to convey the accumulated charge from the MOSFET body comprises a gate terminal of the ACC MOSFET (see, e.g., the description above with reference to FIGS. 4B, 4C, 5B and 5C ).
- Another exemplary circuit terminal that can be used to remove or otherwise control the accumulated charge comprises the terminal of a control circuit (see, e.g., FIGS. 4D and 5D ).
- removing or otherwise controlling the accumulated charge in the ACC MOSFET body improves the linearity of the off-state ACC MOSFET, which reduces the harmonic distortion and IMD of signals affected by the ACC MOSFET, and which, in turn, improves circuit and system performance.
- improvements in both linearity and magnitude
- the off capacitance of shunting ACC MOSFET devices improves the performance of the RF switch circuits.
- the harmonic and intermodulation distortions of the RF switch are reduced using the ACC method and apparatus of the present teachings.
- FIGS. 8 and 9 show schematics of additional exemplary embodiments of RF switching circuits made in accordance with the disclosed method and apparatus for use in improving linearity of MOSFETs having an ACS.
- Rds drain-to-source resistors
- FIG. 8 shows one exemplary embodiment of an RF switch circuit 800 made in accordance with the present disclosure.
- some embodiments of RF switches made in accordance with the present disclosure may include drain-to-source (R ds ) resistors electrically connected to the respective sources and drains of the ACC MOSFETs.
- the exemplary switch 800 of FIG. 8 includes drain-to-source R ds resistors 802 , 804 , and 806 electrically connected to the respective sources and drains of the shunting ACC SOI NMOSFETs 620 , 622 , and 624 , respectively.
- Drain-to-source R ds resistors is now described.
- removal of the accumulated charge via the ACS terminal causes current to flow from the body of the ACC SOI MOSFET.
- a hole current flows from the body of an ACC SOI MOSFET via the ACS
- an equal electron current flows to the FET source and/or drain.
- the sources and/or drains of the ACC SOI NMOSFETs are connected to other SOI NMOSFETs.
- off-state SOI NMOSFETs have a very high impedance (e.g., in the range of 1 Gohm for a 1 mm wide SOI NMOSFET), even a very small drain-to-source current (e.g., in the range of 1 nA) can result in an unacceptably large drain-to-source voltage Vds across the ACC SOI NMOSFET in satisfaction of Kirchhoff's well known current and voltage laws.
- Vds undesirably impacts reliability and linearity of the ACC SOI NMOSFET.
- the drain-to-source resistors R ds provide a path between the ACC FET drain and source whereby currents associated with controlling the accumulated charge may be conducted away from the sources and drains of ACC SOI NMOSFETs when implemented in series with high impedance elements such as other ACC SOI NMOSFETs.
- Exemplary operating voltages for the NMOSFETs 602 - 606 of FIG. 8 , and the ACC NMOSFETs 620 - 624 may include the following: V th approximately zero volts, Vg, for the on-state, of +2.5 V, and Vg, for the off-state, of ⁇ 2.5 V.
- the ACC SOI NMOSFET 622 of FIG. 8 may have a width of 1 mm, and an electron-hole pair generation rate for accumulated charge producing a current of 10 pA/ ⁇ m for operation in the accumulated charge regime.
- Even currents smaller than the exemplary currents may produce adverse affects on the operation of the RF switching circuit 800 by reducing Vgs and/or Vgd of the ACC SOI MOSFETs 620 - 624 in the off-state, thereby reducing the power handling capability and reliability of the circuit by increasing leakage (e.g., when either Vgs or Vgd approaches V th ), by increasing hot-carrier damage caused by excess leakage, etc. Linearity of the MOSFETs is also degraded by reducing Vgs and/or Vgd when either value approaches V th .
- Exemplary values for the R ds resistors 802 to 806 may be selected in some embodiments by selecting a value approximately equal to the resistance of the gate resistors 632 - 636 divided by the number of ACC SOI NMOSFETs in the stack (in the exemplary embodiment, there are three ACC FETs in the stack). More generally, the value of the R ds resistors may be equal to the gate resistor value divided by the number of ACC SOI NMOSFETs in the stack. In one example, a stack of eight ACC SOI NMOSFETs may have gate resistors of 80 kohm and R ds resistors of 10 kohm.
- the R ds resistors may be selected so that they do not adversely affect switch performance characteristics, such as, for example, the insertion loss of the switch 800 due to the off-state ACC SOI NMOSFETs. For example, for a net shunt resistance greater than 10 kohm, the insertion loss is increased by less than 0.02 dB.
- the R ds resistors may be implemented in circuits comprising a single ACC SOI MOSFET (as contrasted with the stacked shunting configuration exemplified in FIG. 8 by the shunting ACC FETs 620 , 622 and 624 ).
- circuits may be desirable if there are other high-impedance elements configured in series with an ACC SOI MOSFET that may cause a significant bias voltage to be applied to the source or drain as a result of the current flow created when removing or otherwise controlling accumulated charge.
- FIG. 9 One exemplary embodiment of such a circuit is shown in FIG. 9 .
- FIG. 9 shows an exemplary single-pole double-throw (SPDT) RF switch circuit 900 made in accordance with the present teachings.
- a DC blocking capacitor 904 is connected to a first RF input node 905 that receives a first RF input signal RF 1 .
- a DC blocking capacitor 906 is connected to a second RF input node 907 that receives a second RF input signal RF 2 .
- a DC blocking capacitor 902 is electrically connected to an RF common output node 903 that provides an RF common output signal (RFC) selectively conveyed to the node RFC 903 by the switch circuit 900 from either the first RF input node 905 or the second RF input node 907 (i.e., RFC either outputs RF 1 or RF 2 , depending upon the operation of the switch as controlled by the control signals C 1 and C 1 x described below in more detail).
- RFC RF common output signal
- a first control signal C 1 is provided to control the operating states of the ACC SOI NMOSFETs 526 and 528 ′ (i.e., C 1 selectively operates the FETs in the on-state or the off-state).
- a second control signal C 1 x is provided to control the operating states of the ACC SOI NMOSFETs 528 and 526 ′.
- the control signals C 1 and C 1 x are generated so that the ACC SOI NMOSFETs 526 and 528 ′ are in an on-state when the ACC SOI NMOSFETs 528 and 526 ′ are in an off-state, and vice versa.
- This configuration allows the RF switch circuit 900 to selectively convey either the signal RF 1 or RF 2 to the RF common output node 903 .
- a first ACS control signal C 2 is configured to control the operation of the ACS terminals of the SOI NMOSFETs 526 and 528 ′.
- a second ACS control signal C 2 x is configured to control the ACS terminals of the ACC SOI NMOSFETs 528 and 526 ′.
- the first and second ACS control signals, C 2 and C 2 x, respectively, are selected so that the ACSs of the associated and respective NMOSFETs are appropriately biased in order to eliminate, reduce, or otherwise control their accumulated charge when the ACC SOI NMOSFETs operate in an accumulated charge regime.
- an R ds resistor 908 is electrically connected between the source and drain of the switching ACC NMOSFET 526 .
- an R ds resistor 910 is electrically connected between the source and drain of the switching ACC NMOSFET 526 ′.
- the circuit 900 is operated so that either the shunting ACC NMOSFET 528 or the shunting ACC NMOSFET 528 ′ operate in an on-state at any time (i.e., at least one of the input signals RF 1 at the node 905 or RF 2 at the node 907 is always conveyed to the RFC node 903 ), thereby providing a low-impedance path to ground for the node 905 or 907 , respectively.
- either the R ds resistor 908 or the R ds resistor 910 provides a low-impedance path to ground from the RF common node 903 , thereby preventing voltage bias problems caused as a result of ACC current flow into the nodes 903 , 905 and 907 that might otherwise be caused when using the DC blocking capacitors 902 , 904 and 906 .
- BVDSS drain-to-source breakdown voltage
- the prior art off-state shunting NMOSFET 528 may introduce harmonic distortion and/or intermodulation distortion in the presence of multiple RF signals This will also introduce a noticeable loss of signal power.
- the nonlinearity of C off adversely impacts the overall switch linearity performance (as described above), and the magnitude of C off adversely affects the small-signal performance parameters such as insertion loss, insertion phase (or delay), and isolation.
- the switch (implemented with ACC MOSFETs) has reduced insertion loss due to lowered parasitic capacitance, reduced insertion phase (or delay), again due to lowered parasitic capacitance, and increased isolation due to less capacitive feedthrough.
- the ACC MOSFET also improves the drift characteristic of SOI MOSFETs as pertains to the drift of the small-signal parameters over a period of time.
- the SOI MOSFET takes some time to accumulate the accumulated charge when the switch is off, the C off capacitance is initially fairly small. However, over a period of time while operated in the accumulated charge regime, the off-state capacitance C off increases toward a final value.
- the time it takes for the NMOSFET to reach a full accumulated charge state depends on the electron-hole pair (EHP) generation mechanism. Typically, this time period is on the order of approximately hundreds of milliseconds for thermal EHP generation at room temperature, for example.
- EHP electron-hole pair
- this time period is on the order of approximately hundreds of milliseconds for thermal EHP generation at room temperature, for example.
- the insertion loss and insertion phase increase.
- the isolation decreases. As is well known, these are undesirable phenomena in standard SOI MOSFET devices.
- the disclosed techniques also allow the implementation of SOI MOSFETs having improved temperature performance, improved sensitivity to Vdd variations, and improved sensitivity to process variations.
- Other improvements to the prior art SOI MOSFETs afforded by the present disclosed method and apparatus will be understood and appreciated by those skilled in the electronic device design and manufacturing arts.
- the exemplary RF switches described above may be implemented using a fully insulating substrate semiconductor-on-insulator (SOI) technology.
- SOI semiconductor-on-insulator
- some embodiments of the present disclosure may be implemented using silicon-germanium (SiGe), wherein the SiGe is used equivalently in place of silicon.
- the MOSFET transistors of the present disclosure may be implemented using “Ultra-Thin-Silicon (UTSi)” (also referred to herein as “ultrathin silicon-on-sapphire”) technology.
- UTSi Ultra-Thin-Silicon
- the transistors used to implement the inventive methods disclosed herein are formed in an extremely thin layer of silicon in an insulating sapphire wafer.
- the fully insulating sapphire substrate enhances the performance characteristics of the inventive RF circuits by reducing the deleterious substrate coupling effects associated with non-insulating and partially insulating substrates. For example, insertion loss improvements may be realized by lowering the transistor on-state resistances and by reducing parasitic substrate conductance and capacitance.
- switch isolation is improved using the fully insulating substrates provided by UTSi technology.
- the parasitic capacitance between the nodes of the RF switches is greatly reduced as compared with bulk CMOS and other traditional integrated circuit manufacturing technologies.
- an SOS enhancement mode NMOSFET may, in some embodiments, be fabricated with a p-type implant into the channel region with n-type source and drain regions, and may have a threshold voltage of approximately +500 mV. The threshold voltage is directly related to the p-type doping level, with higher doping resulting in higher thresholds.
- the SOS enhancement mode PMOSFET may, in some exemplary embodiments, be implemented with an n-type channel region and p-type source and drain regions. Again, the doping level defines the threshold voltage with higher doping resulting in a more negative threshold.
- an SOS depletion-mode NMOSFET may be fabricated by applying the p-type channel-implant mask to the n-type transistor, resulting in a structure that has n-type channel, source, and drain regions and a negative threshold voltage of approximately ⁇ 500 mV.
- a suitable depletion-mode PMOSFET may be implemented by applying the n-type channel-implant mask to the p-type transistor, resulting in a structure that has p-type channel, source, and drain regions and a positive threshold voltage of approximately +500 mV.
- the present ACC MOSFET apparatus can also be implemented using any convenient semiconductor-on-insulator technology, included, but not limited to, silicon-on-insulator, silicon-on-sapphire, and silicon-on-bonded wafer technology.
- silicon-on-bonded wafer technique uses “direct silicon bonded” (DSB) substrates.
- Direct silicon bond (DSB) substrates are fabricated by bonding and electrically attaching a film of single-crystal silicon of differing crystal orientation onto a base substrate.
- Such implementations are available from the Silicon Genesis Corporation headquartered in San Jose, Calif.
- silicon-on-bonded wafer techniques include the so-called Nano-CleaveTM bonding process which can be performed at room temperature.
- SOI wafers can be formed with materials having substantially different thermal expansion coefficients, such as in the manufacture of Germanium-on-Insulator wafers (GeOI).
- Exemplary patents describing silicon-on-bonded wafer implementations are as follows: U.S. Pat. No. 7,056,808, issued Jun. 6, 2006 to Henley, et al.; U.S. Pat. No. 6,969,668, issued Nov. 29, 2005 to Kang, et al.; U.S. Pat. No.
- CMOS/SOS/LSI Switching Regulator Control Device CMOS/SOS/LSI Switching Regulator Control Device
- Orndorff, R. and Butcher, D. Solid-State Circuits Conference, Digest of Technical Papers, 1978 IEEE International, Volume XXI, pp. 234-235, February 1978.
- the “Orndorff” reference is hereby incorporated in its entirety herein for its techniques on the fabrication of enhancement-mode and depletion-mode SOS transistors.
- the 3fo is improved by 14 dB. This is shown in detail in slide number 3 of the attached Appendix A. Improvements in third order harmonic distortion is also applicable to all odd order responses, such as, for example, 5 th order responses, 7 th order responses, etc.
- the second order response of the improved ACC MOSFET-implemented RF switch follows a 2:1 slope (square of the input) whereas the prior art RF switch does not. This results in improved 2fo and IM2 performance at low input power, and roughly the same performance at +35 dBm.
- Slide numbers 6 and 7 of the attached Appendix A treat the performance under non 50-ohm loads.
- the load represents a 5:1 mismatch wherein the load impedance can be of any convenient value that results in a reflection coefficient magnitude of 2 ⁇ 3.
- the voltage can be 1.667 ⁇ higher. Those skilled in the art may view this similarly by sweeping the input power up to higher voltages which equate to the mismatch conditions.
- the slides provided in Appendix A illustrate that the improved RF switch, implemented with ACC MOSFETs made in accordance with the present disclosed method and apparatus, has improved large voltage handling capabilities as compared to the prior art RF switch implementations. As shown in the slides, the harmonics are approximately 20 dB at the worst mismatch phase angle. Transient harmonics are also shown. Those skilled in the art shall observe that the standard SP6T switch 3fo overshoots by several dB before reaching a final value. The improved SP6T switch made in accordance with the present disclosed method and apparatus does not exhibit such a time-dependency.
- Slide number 8 of the Appendix A shows insertion loss performance results achieved using the improved SP6T RF switch of the present teachings. It can be observed that the improved SP6T switch has slightly improved insertion loss (IL) performance characteristics. Slide number 9 of Appendix A shows that isolation is also slightly improved using the present improved SP6T RF switch.
- IL insertion loss
- Slide number 10 of the Appendix A shows IM3 performance which is a metric of the slightly nonlinear behavior of the RF switch.
- the IM3 performance is shown versus phase again due to a load mismatch in the system under test.
- the performance of the improved SP6T RF switch is improved by 27 dB.
- Slide number 11 of the Appendix A is a summary table which also includes IM2 data. Slide number 11 shows almost 20 dB improvement for a low frequency blocker and 11 dB for a high frequency blocker. In one exemplary application wherein the SP6T may be used, all IM products must fall below ⁇ 105 dBm. The improved SP6T switch is the only RF switch manufactured at the time of filing the present application meeting this requirement.
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Abstract
Description
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US13/412,529 Active US8405147B2 (en) | 2005-07-11 | 2012-03-05 | Method and apparatus for use in improving linearity of MOSFETs using an accumulated charge sink |
US13/850,251 Active US9130564B2 (en) | 2005-07-11 | 2013-03-25 | Method and apparatus for use in improving linearity of MOSFETs using an accumulated charge sink |
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US15/707,970 Ceased US10153763B2 (en) | 2005-07-11 | 2017-09-18 | Method and apparatus for use in improving linearity of MOSFETs using an accumulated charge sink |
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US16/377,114 Active US10680600B2 (en) | 2005-07-11 | 2019-04-05 | Method and apparatus for use in improving linearity of MOSFETs using an accumulated charge sink |
US16/590,292 Active US10784855B2 (en) | 2005-07-11 | 2019-10-01 | Method and apparatus for use in improving linearity of MOSFETs using an accumulated charge sink |
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US18/640,862 Pending US20240388285A1 (en) | 2005-07-11 | 2024-04-19 | Method and apparatus for use in improving linearity of mosfets using an accumulated charge sink |
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