Wideband amplifier linearization techniques
The wideband power amplifier linearization technique using a transconductance Gm linearizer with current interpolation addresses the narrow bandwidth limitation of existing techniques, enhancing signal quality and efficiency by reducing intermodulation distortion across a wide bandwidth.
Patent Information
- Application Number
- JP2023512195
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-08-19
- Filing Date
- 2021-08-19
- Publication Date
- 2025-08-20
- Estimated Expiration
- 2041-08-19
AI Technical Summary
Existing linearization techniques for power amplifiers in mobile communication systems are limited to narrow bandwidths, failing to maintain linearity across wide bandwidths required for signals with closely spaced subcarriers, leading to signal quality degradation and efficiency loss.
A wideband power amplifier linearization technique using a transconductance Gm linearizer with current interpolation technology, employing a compensation bias current to linearize submicron CMOS differential power amplifiers across a wide bandwidth.
Improves third-order intermodulation performance and maintains signal quality by reducing intermodulation distortion, achieving efficient operation across a wide bandwidth without significant gain reduction.
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Abstract
Description
[Technical Field]
[0001] Wu Kunlun James Junming Wang CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority under 35 U.S.C. §119 from U.S. Provisional Application No. 63 / 067,499, filed August 19, 2020, entitled "Wideband Amplifier Linearization Techniques," the subject matter of which is incorporated herein by reference.
[0002] The disclosed embodiments relate generally to power amplifiers, and more particularly to radio frequency (RF) amplifier linearization techniques. [Background technology]
[0003] A fundamental component of a mobile communication system is the power amplifier (PA). The power amplifier is an essential part of a mobile communication system and is fundamentally nonlinear. To reduce the nonlinearity, the power amplifier can be backed off to operate within the linear portion of its operating curve. The linearity of the power amplifier is essential to improve its efficiency without compromising its linearity. Various linearization techniques for power amplifiers are used to linearize and improve power efficiency in mobile communication systems.
[0004] Figure 1 (Prior Art) shows an NMOS power amplifier PA100 biased at a low bias condition. To achieve high efficiency and high output power, power amplifiers are typically used at a low bias condition known as class AB or class B. However, such bias conditions result in nonlinear capacitance variations, especially at high output power. The nonlinear capacitance of Cgs primarily limits the performance of class AB power amplifiers. Class AB is typically biased to a deep class AB, which is closed relative to class B for high efficiency. However, as shown in Figure 1, the Cgs variations of M1 become larger at high output power.
[0005] The nonlinear capacitance of Cgs distorts the large input signal. AM-AM distortion is the difference between the envelope of the supply voltage and the RF output voltage. AM-PM distortion is when modulation of the supply voltage causes unwanted phase modulation of the RF output carrier. Intermodulation distortion can occur when two or more signals are mixed through a nonlinear amplifier. The tones interact with each other, resulting in altered (or modulated) amplitudes. Hence the name intermodulation distortion, as it is between harmonic frequencies.
[0006] Supply voltages for submicron CMOS transistors are approaching 1 volt or less. This severely limits the linear output power of amplifier designs, resulting in degradation of third-order intermodulation (IM3). Degraded amplifier linearity results in loss of signal quality and dynamic range, as measured by intermodulation products or error vector magnitude (EVM). In the case of OFDM signals used in Wi-Fi or cellular networks, the RF signal consists of many closely spaced subcarriers, with signal bandwidths ranging from 20 MHz to gigahertz. Maintaining amplifier linearity across such a wide bandwidth is essential to ensure overall signal quality. However, many existing linearization techniques only function over a narrow bandwidth.
[0007] There is a need for linearization techniques for wideband power amplifiers. Summary of the Invention
[0008] We propose a wideband power amplifier (PA) linearization technique. We propose a current interpolation technique to linearize power amplifiers over a wide bandwidth. The wideband power amplifier linearization technique employs a new transconductance Gm linearizer with current interpolation technology to improve third-order intermodulation over a wide bandwidth for submicron CMOS differential power amplifiers. By using a small amount of compensation bias on the out-of-phase differential pair, wideband linearization is achieved, and the compensation bias can be adjusted to optimize it.
[0009] In one embodiment, the power amplifier receives an input signal through a first differential transistor pair, MN1 and MN2. The gates of MN1 and MN2 are coupled to the input node, and the drains of MN1 and MN2 are positively coupled to the output node. The PA receives an input signal through a second differential transistor pair, MN3 and MN4. The gates of MN3 and MN4 are coupled to the input node, and the drains of MN3 and MN4 are negatively coupled to the output node. A first normal tail bias transistor, MB1, provides an operating bias current for the first differential transistor pair. A second compensation tail bias transistor, MB2, provides a compensation bias current for the second differential transistor pair. The compensation bias current must be subtracted from the operating bias current to linearize the PA.
[0010] Other embodiments and advantages are described in the detailed description below. This summary does not define the invention. The invention is defined by the claims. [Brief explanation of the drawings]
[0011] [Figure 1] FIG. 1 (prior art) shows an NMOS power amplifier PA biased at low bias conditions. [Figure 2] FIG. 2 shows a CMOS differential power amplifier PA with a transconductance Gm linearizer according to one novel embodiment. [Figure 3A] FIG. 3A illustrates one embodiment of a linearized power amplifier that provides positive phase gain in accordance with one novel aspect. [Figure 3B] FIG. 3B illustrates another embodiment of a linearized power amplifier that provides negative phase gain in accordance with one novel aspect. [Figure 4] 4A to 4D show simulation results of the transconductance of a differential amplifier in a 65 nm CMOS process according to one novel embodiment. [Figure 5]5A to 5D show two-tone simulation results of a differential amplifier in a 65 nm CMOS process according to one novel embodiment. [Figure 6] FIG. 6 is a flowchart of a power amplifier linearization method using current interpolation in accordance with one novel aspect. DETAILED DESCRIPTION OF THE INVENTION
[0012] Reference will now be made in detail to several embodiments of the invention, examples of which are illustrated in the accompanying drawings.
[0013] FIG. 2 shows a CMOS differential power amplifier PA200 with a transconductance Gm linearizer according to one novel embodiment. NMOS is an n-type metal-oxide-semiconductor field-effect transistor (MOSFET). An NMOS transistor consists of an n-type source and drain and a p-type substrate. When a voltage is applied to the gate, holes in the body (p-type substrate) are driven away from the gate. This creates an n-type channel between the source and drain, and current is conducted from electrons through the induced n-type channel from source to drain. PMOS is a p-type MOSFET. A PMOS transistor consists of a p-type source and drain and an n-type substrate. When a positive voltage is applied between the source and gate (and a negative voltage between the gate and source), a p-type channel of opposite polarity is formed between the source and drain. Current is conducted from source to drain via holes through the p-type induced channel. CMOS technology is a combination of NMOS and PMOS technologies.
[0014] In Figure 2, the CMOS power amplifier PA200 consists of an input matching network (IMN), an output matching network (OMN), a first differential NMOS transistor pair MN1 and MN2, and a second differential NMOS transistor pair MN3 and MN4. Furthermore, the first NMOS pair is connected to two tail bias transistors MB1 and MB4, and the second NMOS pair is also connected to two tail bias transistors MB3 and MB2. Power amplifiers are fundamentally nonlinear due to the nonlinear current-voltage (IV) characteristic curves of CMOS transistors. This nonlinearity causes undesirable input-output distortion. AM-AM distortion is the difference between the envelope of the supply voltage and the RF output voltage. AM-PM distortion is the unwanted phase modulation of the RF output carrier due to modulation of the supply voltage. Intermodulation distortion can occur when two or more signals are mixed through a nonlinear amplifier. The tones interact with each other, resulting in altered (or modulated) amplitudes. Therefore, it is called intermodulation distortion because it occurs between harmonic frequencies.
[0015] Power amplifier linearity is essential to improve efficiency without compromising linearity. However, the supply voltages of submicron CMOS transistors are approaching 1V or less. This significantly limits the linear output power of amplifier designs, resulting in degradation of third-order intermodulation (IM3). Degraded amplifier linearity results in loss of signal quality and dynamic range, as measured by intermodulation products or EVM. In the case of OFDM signals used in Wi-Fi or cellular networks, RF signals consist of many closely spaced subcarriers, with signal bandwidths ranging from 20 MHz to gigahertz. Maintaining amplifier linearity across such a wide bandwidth is essential to ensure overall signal quality. However, many existing linearization techniques only function within a narrow bandwidth.
[0016] According to one novel aspect, a wideband amplifier linearization technique employing a novel transconductance Gm linearizer is proposed for submicron CMOS differential amplifiers, improving third-order intermodulation across a wide bandwidth. PA200 consists of two pairs of differential transconductance transistors, each supplied with a bias current. One pair receives the normal operating bias current, while the complementary pair receives an opposite-phase compensation bias current. The concept of the compensation current source is to generate a negative-phase compensation bias current by subtracting the positive-phase normal operating bias current from the main current source. This is called current interpolation. The compensation bias current is typically smaller than the normal operating bias current, and its purpose is to linearize the transistor Gm without significantly reducing the amplifier gain.
[0017] In the example shown in Figure 2, PA200 consists of two differential transconductance transistor pairs. The first pair (MN1, MN2) is connected positively from the drain terminal of the transistor to the output load matching network. The second pair (MN3, MN4) is connected negatively from the drain terminal of the transistor to the output matching network. Note that this complementary connection (positive / negative) is used to give the amplifier a positive-phase gain of Δ / 2 or a negative-phase gain of -Δ / 2, provided the two complementary transistor pairs are equally biased. In a conventional implementation, for a fixed-gain amplifier, only one of the differential transconductance transistor pairs is turned on.
[0018] A variable gain amplifier can be formed by connecting multiple pairs of complementary differential transconductance transistors with different gain adjustment amounts, such as + / -Δ1 / 2 and + / -Δ2 / 2, in parallel between the same input and output matching networks. Among the multiple pairs of complementary differential transconductance transistors, the positively connected pair is operated to add currents, and the negatively connected pair is operated to subtract currents. The gain of the amplifier is determined by the combination of the pair operating as positively connected and the pair operating as negatively connected.
[0019] The current bias of the differential transconductance transistor pairs is provided between the common source terminals of the differential transistor pairs and ground by tail bias transistors. In the proposed invention, two tail bias transistors are attached to the common source terminals and ground of each differential transconductance transistor pair. For example, tail bias transistors MB1 and MB4 are attached to the common source terminal of the first differential transistor pair (MN1 and MN2), and tail bias transistors MB3 and MB2 are attached to the common source terminal of the second differential transistor pair (MN3 and MN4). The tail bias transistors MB1 and MB2 are referred to as one pair, and the tail bias transistors MB3 and MB4 are referred to as another pair. In each pair, the first tail bias transistor is referred to as the normal tail bias transistor (MB1, MB3, etc.), and the second tail bias transistor is referred to as the compensation tail bias transistor (MB2, MB4, etc.).
[0020] Each tail bias transistor pair provides different bias currents to the transconductance transistor pairs, with the first normal tail bias transistor providing the amplifier's normal operating bias current and the second compensating tail transistor providing a compensating bias current to the compensated (anti-phase) differential transconductance transistor pair. For example, for positive phase gain, MB1 provides the normal operating bias current to the first pair (MN1, MN2), while MB2 provides the compensating bias current to the second pair (MN3, MN4). Similarly, for negative phase gain, MB3 provides the normal operating bias current to the second pair (MN3, MN4), while MB4 provides the compensating bias current to the first pair (MN1, MN2). The compensating bias current is typically smaller than the normal operating bias current and is intended to linearize the transistor Gm without significantly reducing the amplifier's gain.
[0021] A control signal called a "phase switch" is used to control the two pairs of tail-biased transistors. This control signal either turns on the normally-biased transistor in the positive-connected differential transconductance transistor pair to determine a positive gain of Δ / 2, or turns on the normally-biased transistor in the negative-connected differential transconductance transistor pair to determine a negative gain of -Δ / 2. This control signal also turns on the compensating tail-biased transistor in the complementary differential transconductance transistor pair to achieve linearization.
[0022] 3A illustrates an embodiment of a linearized power amplifier 200 that provides a positive phase gain in accordance with one novel aspect. For a positive phase gain of Δ / 2, a control signal turns on a normal tail bias transistor MB1 and a positively connected differential transconductance transistor pair (MN1, MN2). The control signal also turns on a compensating tail bias transistor MB2 of a complementary differential transconductance transistor pair (MN3, MN4), achieving linearization.
[0023] 3B illustrates another embodiment of a linearized power amplifier 200 that provides a negative phase gain in accordance with one novel aspect. For a negative phase gain of −Δ / 2, a control signal turns on the normal tail bias transistor MB3 and the negatively connected differential transconductance transistor pair (MN3, MN4). This control signal also turns on the compensation tail bias transistor MB4 of the complementary differential transconductance transistor pair (MN1, MN2), achieving linearization.
[0024] The concept of current interpolation is to compensate the main current source by generating a negative-sequence current that subtracts the positive-sequence current from the main current source. The normal operating bias current and the compensation bias current can be controlled by adjusting the size of the tail bias transistors. In a preferred embodiment, the normal tail bias transistors MB1 and MB3 are small in size, and the compensation tail bias transistors MB2 and MB4 are large in size, so that the compensation bias current is generally smaller than the normal operating bias current, thereby achieving linearization. The key point is to use different turn-on channel resistances R at the source terminals of the differential amplifier. ch The differential amplifier bias current Id is adjusted by using the
number
[0025] Transistor channel resistance R ch is inversely proportional to the transistor channel width W. As a result, when the channel width is large (for example, when the transistor size is large), R ch decreases, which in turn decreases the amplifier drain current. Similarly, a smaller channel width (e.g., smaller transistor size) reduces R ch rises, followed by an increase in the amplifier drain current.
[0026] In the positive-phase amplifier shown in Figure 3A, the positive-connected differential pair (MN1, MN2) is biased with a relatively high normal operating bias current. For this reason, the channel resistance of the normal tail bias transistor MB1 is designed to be as small as possible. At the same time, the negative-connected differential pair (MN3, MN4) is a complementary pair and is biased with a relatively low compensation bias current. For this reason, the channel resistance of the compensation tail bias transistor MB2 is designed to be higher than the channel resistance of the normal tail bias transistor MB1.
[0027] In the negative-phase amplifier shown in Figure 3B, the negative-connected differential pair (MN3, MN4) is biased with a relatively high normal operating bias current. For this reason, the channel resistance of the normal tail bias transistor MB3 is designed to be as small as possible. At the same time, the positive-connected differential pair (MN1, MN2) is a complementary pair and is biased with a relatively low compensation bias current. For this reason, the channel resistance of the compensation tail bias transistor MB4 is designed to be higher than the channel resistance of the normal tail bias transistor MB3.
[0028] Figures 4A to 4D show simulation results of the transconductance Gm of a differential amplifier in a 65 nm CMOS process according to one novel embodiment. For large signal operation, the amplifier suffers from nonlinearity in transconductance (Gm). In Figures 4(a) to 4(d), delta on the X-axis is the difference (e.g., delta) of the input voltage Vin, and the dotted curves are without linearization and the solid curves are with linearization. Figure 4(a) shows the curve of transconductance Gm. Figure 4(b) shows the curve of the first-order derivation of transconductance (Gm2). Figure 4(c) shows the curve of the second-order derivation of transconductance (Gm3). Figure 4(d) shows the average value of the second-order derivation of Gm.
[0029] As shown in Figure 4(a), when the delta input voltage Vin difference varies from -0.2V to 0.2V, the transconductance of the differential pair varies from 0.125 to 0.135 A / V. When the proposed linearization technique is applied, Gm varies from 0.115 to 0.118 A. The change in Gm is significantly smaller than without linearization. A series of derivations of Gm can be performed to further observe the different harmonic components generated by the nonlinearity of Gm. For example, the first-order derivation of Gm is related to IM2 as shown in Figure 4(b), and the second-order derivation of Gm is related to IM3 as shown in Figure 4(c). After linearization, as shown in Figure 4(d), it can be seen that the average value of Gm3 from -0.2V to 0.2V delta is lower. Linearization reduces IM3, which is proportional to the magnitude of Gm3.
[0030] Figures 5A through 5D show two-tone simulation results for a differential amplifier in a 65 nm CMOS process according to one novel embodiment. In Figures 5(a) and 5(b), the input power (e.g., Power_IF) is swept from -34 dBm to -14 dBm. The solid curves represent linearization, while the dotted curves represent no linearization. Figure 5(a) shows first- and third-order intermodulations at 200 MHz tone spacing. Figure 5(b) shows first- and third-order intermodulations at 100 k to 200 MHz tone spacing. Figure 5(c) shows the power gain of the amplifier. Figure 5(d) shows the average third-order intermodulations at 100 k to 200 MHz tone spacing.
[0031] Figure 5(a) verifies the expected low IM3 with linearization. Figure 5(a) shows the simulation results based on a specific two-tone spacing frequency of 200 MHz. To verify the wideband performance of the linearized amplifier, the spacing frequency is swept from 100 kΩ to 200 MHz, as shown in Figure 5(b). All linearized IM3 values are lower than those without linearization. For a wideband signal with evenly distributed tone spacing, the overall IM3 improvement is the average IM3 value from 100 kΩ to 200 MHz, as shown in Figure 5(d). Figure 5(d) shows that the linearized amplifier can improve IM3 by 10 dB. Meanwhile, the power gain is only reduced by 1.5 dB, as shown in Figure 5(c).
[0032] FIG. 6 is a flowchart of a power amplifier linearization method using current interpolation according to one novel aspect. In step 601, the power amplifier receives an input signal through a first differential transistor pair, MN1 and MN2. The MN1 gate and MN2 gate are coupled to the input node, and the MN1 drain and MN2 drain are positively coupled to the output node. In step 602, the PA receives an input signal through a second differential transistor pair, MN3 and MN4. The MN3 gate and MN4 gate are coupled to the input node, and the MN3 drain and MN4 drain are negatively coupled to the output node. In step 603, a first normal tail bias transistor, MB1, provides an operating bias current to the first differential transistor pair. In step 604, a second compensation tail bias transistor, MB2, provides a compensation bias current to the second differential transistor pair. The compensation bias current needs to be subtracted from the operating bias current to linearize the PA.
[0033] Although the present invention has been described in connection with certain specific embodiments for purposes of illustration, the invention is not limited thereto. Accordingly, various modifications, adaptations, and combinations of the various features of the described embodiments may be made without departing from the scope of the invention as defined in the claims.
Claims
1. 1. A linearized differential power amplifier (PA), comprising: a first differential transistor pair including an MN1 first differential transistor, the MN1 gate of which is coupled to the positive terminal of an input node and the MN1 drain of which is coupled to one of the output nodes, and an MN2 first differential transistor, the MN2 gate of which is coupled to the negative terminal of the input node and the MN2 drain of which is coupled to the other of the output nodes, wherein the MN1 drain and the MN2 drain are positively coupled to the output node; a second differential transistor pair including an MN3 second differential transistor, the MN3 gate of which is coupled to the positive terminal of said input node and the MN3 drain of which is negatively coupled to the other of said output nodes, and an MN4 second differential transistor, the MN4 gate of which is coupled to the negative terminal of said input node and the MN4 drain of which is negatively coupled to one of said output nodes; a first normal tail bias transistor MB1 for providing an operating bias current to the first differential transistor pair; a second compensating tail bias transistor MB2 for providing a compensating bias current to the second differential transistor pair; a third normal tail bias transistor MB3 for providing a second operating bias current to the second differential transistor pair; a fourth compensation tail bias transistor MB4 for providing a second compensation bias current to the first differential transistor pair; an output matching network coupled to the output node for producing an amplified output signal; Equipped with the first normal tail bias transistor MB1 and the second compensation tail bias transistor MB2 are switched on and off together by a control signal; the third normal tail bias transistor MB3 and the fourth compensation tail bias transistor MB4 are switched on and off together by a control signal; When the first normal tail bias transistor MB1 and the second compensation tail bias transistor MB2 are on, and the third normal tail bias transistor MB3 and the fourth compensation tail bias transistor MB4 are off, the first normal tail bias transistor MB1 supplies a normal operating bias current to the first differential transistor pair; the second compensation tail bias transistor MB2 supplies a compensation bias current to the second differential transistor pair; linearizing by subtracting a compensation bias current provided by the second differential transistor pair negatively connected to an output node from a normal operating bias current provided by the first normal tail bias transistor MB1; When the third normal tail bias transistor MB3 and the fourth compensation tail bias transistor MB4 are on, and the first normal tail bias transistor MB1 and the second compensation tail bias transistor MB2 are off, the third normal tail bias transistor MB3 supplies a normal operating bias current to the first differential transistor pair; the fourth compensation tail bias transistor MB4 provides a compensation bias current to the second differential transistor pair; A PA that is linearized by subtracting a compensation bias current supplied by the second differential transistor pair negatively connected to an output node from a normal operating bias current supplied by the third normal tail bias transistor MB3.
2. 2. The PA of claim 1, wherein MB3 has a small channel resistance and MB4 has a large channel resistance such that the second operating bias current is higher than the second compensation bias current.
3. 2. The PA of claim 1, wherein the control signals turn on MB1 and MB2 and turn off MB3 and MB4 for a positive power gain of +Δ / 2 of the PA, and the control signals turn off MB1 and MB2 and turn on MB3 and MB4 for a negative power gain of −Δ / 2 of the PA.
4. 1. A method performed by a linearized power amplifier (PA), comprising: receiving an input signal by a first differential transistor pair including an MN1 first differential transistor having an MN1 gate coupled to a positive terminal of an input node and an MN1 drain coupled to one of the output nodes, and an MN2 first differential transistor having an MN2 gate coupled to a negative terminal of the input node and an MN2 drain coupled to the other of the output nodes, the first differential transistor pair having a positive coupling between the MN1 drain and the MN2 drain and the output node; receiving the input signal by a second differential transistor pair, the second differential transistor pair including an MN3 second differential transistor having an MN3 gate coupled to the positive terminal of the input node and an MN3 drain coupled to the negative terminal of the output node, and an MN4 second differential transistor having an MN4 gate coupled to the negative terminal of the input node and an MN4 drain coupled to the negative terminal of the output node; providing an operating bias current to the first differential transistor pair by a first normal tail bias transistor MB1; providing a compensating bias current to the second differential transistor pair by a second compensating tail bias transistor MB2; providing a second operating bias current to the second differential transistor pair by a third normal tail bias transistor MB3; providing a second compensation bias current to the first differential transistor pair by a fourth compensation tail bias transistor MB4; the first normal tail bias transistor MB1 and the second compensation tail bias transistor MB2 are switched on and off together by a control signal; When the first normal tail bias transistor MB1 and the second compensation tail bias transistor MB2 are on, and the third normal tail bias transistor MB3 and the fourth compensation tail bias transistor MB4 are off, the first normal tail bias transistor MB1 supplies a normal operating bias current to the first differential transistor pair; the second compensation tail bias transistor MB2 supplies a compensation bias current to the second differential transistor pair; linearized by subtracting a compensation bias current provided by the second differential transistor pair negatively coupled to an output node from a normal operating bias current provided by the first normal tail bias transistor MB1; the third normal tail bias transistor MB3 and the fourth compensation tail bias transistor MB4 are switched on and off together by a control signal; When the third normal tail bias transistor MB3 and the fourth compensation tail bias transistor MB4 are on, and the first normal tail bias transistor MB1 and the second compensation tail bias transistor MB2 are off, the third normal tail bias transistor MB3 supplies a normal operating bias current to the first differential transistor pair; the fourth compensation tail bias transistor MB4 provides a compensation bias current to the second differential transistor pair; linearized by subtracting a compensation bias current provided by the second differential transistor pair negatively connected to the output node from the normal operating bias current provided by the third normal tail bias transistor MB3; method.
5. 5. The method of claim 4, wherein MB3 has a small channel resistance and MB4 has a large channel resistance such that the second operating bias current is higher than the second compensation bias current.
6. 5. The method of claim 4, wherein the control signal turns on MB1 and MB2 and turns off MB3 and MB4 for a positive phase power gain of +Δ / 2 of the PA, and the control signal turns off MB1 and MB2 and turns on MB3 and MB4 for a negative phase power gain of −Δ / 2 of the PA.
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