IP Library Granted Patent US 8,463,226
Granted Patent B2
US 8,463,226 · App. 13/004,640 · Granted Jun 11, 2013

Amplifiers and related receiver systems

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Quick Facts
Patent No.
US 8,463,226
App. No.
13/004,640
Granted
Jun 11, 2013
Kind
B2
Abstract

Apparatus are provided for amplifier circuits and related receiver systems. An amplifier circuit includes a first common-source amplification stage and a second common-source amplification stage. The input of the second common-source amplification stage is coupled to the output of the first common-source amplification stage such that the first common-source amplification stage generates a first amplified signal, and the second common-source amplification stage generates a second amplified signal based on the first amplified signal. The first common-source amplification stage is coupled to a first node and the second common-source amplification stage is coupled to a second node, wherein the common-source amplification stages are configured such that a current between the first node and the second node flows in series through the common-source amplification stages.

Claims (66)

1. An amplifier circuit comprising:

a first common-source amplification stage having a first amplification stage output, the first common-source amplification stage being configured to generate a first amplified signal at the first amplification stage output;

a second common-source amplification stage having a second amplification stage input and a second amplification stage output, the second amplification stage input being coupled to the first amplification stage output, the second common-source amplification stage being configured to generate a second amplified signal at the second amplification stage output based on the first amplified signal, wherein:

the first common-source amplification stage is coupled to a first reference voltage node;

the second common-source amplification stage is coupled to a second reference voltage node; and

the first common-source amplification stage and the second common-source amplification stage are configured such that a current between the first reference voltage node and the second reference voltage node flows in series through the first common-source amplification stage and the second common-source amplification stage;

a first tank circuit coupled between the first amplification stage output and a third reference voltage node; and

a second tank circuit coupled between the second amplification stage output and the third reference voltage node.

2. The amplifier circuit of claim 1 , wherein the current between the first reference voltage node and the second reference voltage node flows in series through the first tank circuit and the second tank circuit.

3. The amplifier circuit of claim 1 , wherein:

the first tank circuit is configured to provide a first resonant frequency for the first common-source amplification stage;

the second tank circuit is configured to provide a second resonant frequency for the second common-source amplification stage; and

the first resonant frequency and the second resonant frequency are different.

4. The amplifier circuit of claim 1 , further comprising a capacitive element coupled between the third reference voltage node and the first reference voltage node.

5. The amplifier circuit of claim 4 , wherein:

the first common-source amplification stage comprises a NMOS transconductance amplification stage having a common source coupled to the first reference voltage node; and

the second common-source amplification stage comprises a PMOS transconductance amplification stage having a common source coupled to the second reference voltage node.

6. An amplifier circuit comprising:

a first common-source amplification stage having a first amplification stage output, the first common-source amplification stage being configured to generate a first amplified signal at the first amplification stage output; and

a second common-source amplification stage having a second amplification stage input and a second amplification stage output, the second amplification stage input being coupled to the first amplification stage output, the second common-source amplification stage being configured to generate a second amplified signal at the second amplification stage output based on the first amplified signal, wherein:

the first common-source amplification stage includes a first transistor stack coupled between the first amplification stage output and a first reference voltage node;

the second common-source amplification stage includes a second transistor stack coupled between a second reference voltage node and the second amplification stage output; and

the first common-source amplification stage and the second common-source amplification stage are configured such that a current between the first reference voltage node and the second reference voltage node flows in series through the first transistor stack and the second transistor stack.

7. The amplifier circuit of claim 6 , wherein:

the first transistor stack includes:

a first transistor having a source terminal connected to the first reference voltage node, a gate terminal configured to receive a first input signal, and a drain terminal; and

a second transistor having a source terminal connected to the drain terminal of the first transistor, a gate terminal connected to the second reference voltage node, and a drain terminal connected to a first node of the first amplification stage output; the first common-source amplification stage is configured to generate a first component of the first amplified signal at the first node of the first amplification stage output based on the first input signal;

the second transistor stack includes:

a third transistor having a source terminal connected to the second reference voltage node, a gate terminal connected to the first amplification stage output, and a drain terminal; and

a fourth transistor having a source terminal connected to the drain terminal of the third transistor, a gate terminal connected to the first reference voltage node, and a drain terminal connected to the second amplification stage output; and

the second common-source amplification stage is configured to generate a first component of the second amplified signal at a first node of the second amplification stage output based on the first component of the first amplified signal.

8. The amplifier circuit of claim 7 , wherein:

the first transistor comprises a first NMOS transistor;

the second transistor comprises a second NMOS transistor;

the third transistor comprises a first PMOS transistor; and

the fourth transistor comprises a second PMOS transistor.

9. The amplifier circuit of claim 7 , wherein:

the first common-source amplification stage includes:

a fifth transistor having a source terminal connected to the first reference voltage node, a gate terminal configured to receive a second input signal, and a drain terminal; and

a sixth transistor having a source terminal connected to the drain terminal of the fifth transistor, a gate terminal connected to the second reference voltage node, and a drain terminal connected to a second node of the first amplification stage output; the first common-source amplification stage is configured to generate a second component of the first amplified signal at the second node of the first amplification stage output based on the second input signal;

the second common-source amplification stage includes:

a seventh transistor having a source terminal connected to the second reference voltage node, a gate terminal connected to the second node of the first amplification stage output, and a drain terminal; and

an eighth transistor having a source terminal connected to the drain terminal of the seventh transistor, a gate terminal connected to the first reference voltage node, and a drain terminal connected to a second node of the second amplification stage output; and

the second common-source amplification stage is configured to generate a second component of the second amplified signal at the second node of the second amplification stage output based on the second component of the first amplified signal.

10. The amplifier circuit of claim 9 , further comprising:

a first inductive element connected between the first node of the first amplification stage output and a third reference voltage node;

a second inductive element connected between the second node of the first amplification stage output and the third reference voltage node; and

a first capacitive element connected between the first node of the first amplification stage output and the second node of the first amplification stage output

a third inductive element connected between the first node of the second amplification stage output and the third reference voltage node;

a fourth inductive element connected between the second node of the second amplification stage output and the third reference voltage node;

a second capacitive element connected between the first node of the second amplification stage output and the second node of the second amplification stage output; and

a third capacitive element connected between the third reference voltage node and the first reference voltage node.

11. A receiver system comprising:

an antenna configured to generate an electrical signal in response to an electromagnetic signal; and

amplifier circuitry configured to generate an output signal representative of the electrical signal, the amplifier circuitry including:

a first common-source amplification stage configured to generate a first amplified signal based on an input signal representative of the electrical signal; and

a second common-source amplification stage coupled to the first common-source amplification stage, the second common-source amplification stage being configured to generate the output signal based on the first amplified signal, wherein the first common-source amplification stage and the second common-source amplification stage are stacked such that a direct current flows in series through the first common-source amplification stage and the second common-source amplification stage;

a first tank circuit coupled to the first common-source amplification stage, the first tank circuit being configured to provide a first resonant frequency for the first common-source amplification stage that is less than a carrier frequency of the electromagnetic signal; and

a second tank circuit coupled to the second common-source amplification stage, the second tank circuit being configured to provide a second resonant frequency for the second common-source amplification stage that is greater than the carrier frequency of the electromagnetic signal.

12. An amplifier circuit comprising:

a first common-source amplification stage having a first amplification stage output, the first common-source amplification stage being configured to generate a first amplified signal at the first amplification stage output;

a second common-source amplification stage having a second amplification stage input and a second amplification stage output, the second amplification stage input being coupled to the first amplification stage output, the second common-source amplification stage being configured to generate a second amplified signal at the second amplification stage output based on the first amplified signal, wherein:

the first common-source amplification stage comprises a NMOS transconductance amplification stage having a common source coupled to a ground reference voltage node;

the second common-source amplification stage comprises a PMOS transconductance amplification stage having a common source coupled to a supply reference voltage node; and

the NMOS transconductance amplification stage and the PMOS transconductance amplification stage are configured such that a current between the ground reference voltage node and the supply reference voltage node flows in series through the NMOS transconductance amplification stage and the PMOS transconductance amplification stage; and

a capacitive element coupled between the ground reference voltage node and an alternating current (AC) ground reference voltage node between the first amplification stage output and the second amplification stage output, wherein a capacitance of the capacitive element is configured to provide a virtual ground reference voltage at the AC ground reference voltage node.

Assignments (30)
CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE APPLICATION 11759915 AND REPLACE IT WITH APPLICATION 11759935 PREVIOUSLY RECORDED ON REEL 040925 FRAME 0001. ASSIGNOR(S) HEREBY CONFIRMS THE RELEASE OF SECURITY INTEREST. Recorded Feb 17, 2020
From: MORGAN STANLEY SENIOR FUNDING, INC.
To: NXP, B.V. F/K/A FREESCALE SEMICONDUCTOR, INC.
Reel/Frame 052917/0001 →
CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE APPLICATION 11759915 AND REPLACE IT WITH APPLICATION 11759935 PREVIOUSLY RECORDED ON REEL 040928 FRAME 0001. ASSIGNOR(S) HEREBY CONFIRMS THE RELEASE OF SECURITY INTEREST. Recorded Jan 17, 2020
From: MORGAN STANLEY SENIOR FUNDING, INC.
To: NXP B.V.
Reel/Frame 052915/0001 →
CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE APPLICATION 11759915 AND REPLACE IT WITH APPLICATION 11759935 PREVIOUSLY RECORDED ON REEL 037486 FRAME 0517. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT AND ASSUMPTION OF SECURITY INTEREST IN PATENTS. Recorded Dec 10, 2019
From: CITIBANK, N.A.
To: MORGAN STANLEY SENIOR FUNDING, INC.
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From: NXP B.V.
To: MORGAN STANLEY SENIOR FUNDING, INC.
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CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE APPLICATION 12298143 PREVIOUSLY RECORDED ON REEL 038017 FRAME 0058. ASSIGNOR(S) HEREBY CONFIRMS THE SECURITY AGREEMENT SUPPLEMENT. Recorded Oct 22, 2019
From: NXP B.V.
To: MORGAN STANLEY SENIOR FUNDING, INC.
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CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE APPLICATION 12298143 PREVIOUSLY RECORDED ON REEL 042985 FRAME 0001. ASSIGNOR(S) HEREBY CONFIRMS THE SECURITY AGREEMENT SUPPLEMENT. Recorded Oct 22, 2019
From: NXP B.V.
To: MORGAN STANLEY SENIOR FUNDING, INC.
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CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE APPLICATION 12298143 PREVIOUSLY RECORDED ON REEL 039361 FRAME 0212. ASSIGNOR(S) HEREBY CONFIRMS THE SECURITY AGREEMENT SUPPLEMENT. Recorded Oct 22, 2019
From: NXP B.V.
To: MORGAN STANLEY SENIOR FUNDING, INC.
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RELEASE OF SECURITY INTEREST Recorded Sep 10, 2019
From: MORGAN STANLEY SENIOR FUNDING, INC.
To: NXP B.V.
Reel/Frame 050745/0001 →
RELEASE OF SECURITY INTEREST Recorded Sep 10, 2019
From: MORGAN STANLEY SENIOR FUNDING, INC.
To: NXP B.V.
Reel/Frame 050744/0097 →
CORRECTIVE ASSIGNMENT TO CORRECT THE TO CORRECT THE APPLICATION NO. FROM 13,883,290 TO 13,833,290 PREVIOUSLY RECORDED ON REEL 041703 FRAME 0536. ASSIGNOR(S) HEREBY CONFIRMS THE THE ASSIGNMENT AND ASSUMPTION OF SECURITY INTEREST IN PATENTS.. Recorded Feb 20, 2019
From: MORGAN STANLEY SENIOR FUNDING, INC.
To: SHENZHEN XINGUODU TECHNOLOGY CO., LTD.
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From: NXP B.V.
To: MORGAN STANLEY SENIOR FUNDING, INC.
Reel/Frame 042985/0001 →
CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE APPLICATION 12681366 PREVIOUSLY RECORDED ON REEL 039361 FRAME 0212. ASSIGNOR(S) HEREBY CONFIRMS THE SECURITY AGREEMENT SUPPLEMENT. Recorded May 9, 2017
From: NXP B.V.
To: MORGAN STANLEY SENIOR FUNDING, INC.
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CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE PATENTS 8108266 AND 8062324 AND REPLACE THEM WITH 6108266 AND 8060324 PREVIOUSLY RECORDED ON REEL 037518 FRAME 0292. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT AND ASSUMPTION OF SECURITY INTEREST IN PATENTS. Recorded Feb 1, 2017
From: CITIBANK, N.A.
To: MORGAN STANLEY SENIOR FUNDING, INC.
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MERGER Recorded Jan 3, 2017
From: FREESCALE SEMICONDUCTOR, INC.
To: NXP USA, INC.
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RELEASE OF SECURITY INTEREST Recorded Nov 7, 2016
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To: NXP B.V.
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To: NXP, B.V., F/K/A FREESCALE SEMICONDUCTOR, INC.
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CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE APPLICATION 12092129 PREVIOUSLY RECORDED ON REEL 038017 FRAME 0058. ASSIGNOR(S) HEREBY CONFIRMS THE SECURITY AGREEMENT SUPPLEMENT. Recorded Jul 14, 2016
From: NXP B.V.
To: MORGAN STANLEY SENIOR FUNDING, INC.
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SUPPLEMENT TO THE SECURITY AGREEMENT Recorded Jun 16, 2016
From: FREESCALE SEMICONDUCTOR, INC.
To: MORGAN STANLEY SENIOR FUNDING, INC.
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SECURITY AGREEMENT SUPPLEMENT Recorded Mar 7, 2016
From: NXP B.V.
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ASSIGNMENT AND ASSUMPTION OF SECURITY INTEREST IN PATENTS Recorded Jan 13, 2016
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PATENT RELEASE Recorded Dec 21, 2015
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To: FREESCALE SEMICONDUCTOR, INC.
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PATENT RELEASE Recorded Dec 21, 2015
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To: FREESCALE SEMICONDUCTOR, INC.
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SECURITY AGREEMENT Recorded Nov 6, 2013
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To: CITIBANK, N.A., AS NOTES COLLATERAL AGENT
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SECURITY AGREEMENT Recorded Jan 31, 2012
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To: CITIBANK, N.A., AS COLLATERAL AGENT
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SECURITY AGREEMENT Recorded Jan 31, 2012
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To: CITIBANK, N.A., AS COLLATERAL AGENT
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SECURITY AGREEMENT Recorded Jan 31, 2012
From: FREESCALE SEMICONDUCTOR, INC.
To: CITIBANK, N.A., AS COLLATERAL AGENT
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ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 23, 2011
From: YU, CHUANZHAO; EID, SALEM
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