Amplifier with improved power supply rejection in feedback circuits
Frequency-selective feedback circuits and methods for an amplifier (particularly LNAs) that improve power supply rejection in feedback circuits, reduce non-linearities caused by low-frequency noise coupled to the input of the LNA, and improve settling times of the quiescent bias-point of the LNA. Some embodiments allow multiple modes of operation to allow selection of gain versus linearity characteristics. One aspect of the present invention includes an input matching feedback circuit configured to be coupled between an input terminal of an amplification core and a feedback node in the output signal path of the amplification core, the input matching feedback circuit including a power supply rejection resistor configured to provide a low-impedance path to a reference potential for low-frequency noise.
1 . An input matching feedback circuit configured to be coupled between an input terminal of an amplification core and a feedback node in an output signal path of the amplification core, the input matching feedback circuit including:
(a) a feedback signal path including:
(1) a first capacitor;
(2) a variable resistor coupled in series with the first capacitor;
(3) a switch coupled in series with the variable resistor; and
(4) a second capacitor coupled in series with the switch; and
(b) a power supply rejection resistor coupled to a node on the feedback signal path and configured to be coupled to a reference potential;
wherein the input matching feedback circuit is selectively switchable between an enabled feedback state and a disabled state by the switch, and wherein during the disabled state, the switch is open and the power supply rejection resistor is disconnected from the input terminal.
2 . The input matching feedback circuit of claim 1 , wherein the variable resistor includes:
(a) a first resistor;
(b) a second resistor coupled in series with the first resistor; and
(c) a bypass switch coupled in parallel with the second resistor.
3 . The input matching feedback circuit of claim 1 , wherein at least one of the first and second capacitors is variable.
4 . The input matching feedback circuit of claim 1 , wherein the power supply rejection resistor has a resistance value in the range of about 1KΩ to about 100KΩ.
5 . The input matching feedback circuit of claim 1 , wherein the first and second capacitors each have a capacitance value in the range of about 0.2 pF to about 20 pF.
6 . The input matching feedback circuit of claim 1 , wherein at least one of the first and second capacitors is variable, and wherein the variable resistor includes:
(a) a first resistor;
(b) a second resistor coupled in series with the first resistor; and
(c) a bypass switch coupled in parallel with the second resistor.
7 . The input matching feedback circuit of claim 1 , wherein the amplification core is a low-noise amplification core.
8 . The input matching feedback circuit of claim 1 , wherein the power supply rejection resistor is coupled to the feedback signal path at a node between the first capacitor and the variable resistor.
9 . An amplifier including:
(a) an amplification core including:
(1) an input terminal configured to receive a radio-frequency (RF) signal; and
(2) an amplified-signal terminal;
(b) an output terminal; and
(c) an input matching feedback circuit coupled between the input terminal of the amplification core and a feedback node in an output signal path of the amplification core, the input matching feedback circuit including:
(1) a feedback signal path including:
(A) a first capacitor coupled to the feedback node;
(B) a variable resistor coupled in series with the first capacitor;
(C) a switch coupled in series with the variable resistor; and
(D) a second capacitor coupled in series with the switch and coupled to the input terminal; and
(2) a power supply rejection resistor coupled to a node on the feedback signal path and configured to be coupled to a reference potential;
wherein the input matching feedback circuit is selectively switchable between an enabled feedback state and a disabled state by the switch, and wherein during the disabled state, the switch is open and the power supply rejection resistor is disconnected from the input terminal.
10 . The amplifier of claim 9 , wherein the variable resistor includes:
(a) a first resistor;
(b) a second resistor coupled in series with the first resistor; and
(c) a bypass switch coupled in parallel with the second resistor.
11 . The amplifier of claim 9 , wherein at least one of the first and second capacitors is variable.
12 . The amplifier of claim 9 , wherein the power supply rejection resistor has a resistance value in the range of about 1KΩ to about 100KΩ.
13 . The amplifier of claim 9 , wherein the first and second capacitors each have a capacitance value in the range of about 0.2 pF to about 20 pF.
14 . The amplifier of claim 9 , wherein the power supply rejection resistor is coupled to the feedback signal path at a node between the first capacitor and the variable resistor.
15 . The amplifier of claim 9 , further including an input impedance matching circuit coupled to the input terminal and configured to receive the RF signal.
16 . The amplifier of claim 9 , wherein the amplification core includes a degeneration terminal, and further including a degeneration circuit coupled to the degeneration terminal and configured to be coupled to a reference potential, the degeneration circuit including a degeneration inductor.
17 . The amplifier of claim 9 , wherein the amplifier is a low-noise amplifier.
18 . The amplifier of claim 9 , wherein the amplification core further includes:
(a) a common-source FET having a gate coupled to the input terminal signal, a source, and a drain;
(b) a stack comprising at least one common-gate FET, each common-gate FET having a gate, a source, and a drain outputting an amplified version of the received RF signal, wherein the source of one of the at least one common-gate FET is coupled to the drain of the common-source FET, and wherein the drain of one of the at least one common-gate FET is coupled to the amplified-signal terminal of the amplification core.
19 . A circuit configured to be coupled between an input terminal of an amplification core and a feedback node in an output signal path of the amplification core, the circuit including:
a feedback signal path including a first capacitor, a variable resistor coupled in series with the first capacitor, a switch coupled in series with the variable resistor, and a second capacitor coupled in series with the switch;
a power supply rejection resistor coupled to a node on the feedback signal path and configured to be coupled to a reference potential;
wherein the circuit is selectively switchable between an enabled feedback state and a disabled state by the switch, and wherein during the disabled state, the switch is open and the power supply rejection resistor is disconnected from the input terminal.
20 . The circuit of claim 19 , wherein the variable resistor includes: a first resistor, a second resistor coupled in series with the first resistor, and a bypass switch coupled in parallel with the second resistor.