IP Library › Granted Patent US 7,509,102
Granted Patent B2
US 7,509,102 · App. 11/439,023 · Granted Mar 24, 2009

DAC based switching power amplifier

Assignee: Broadcom Corporation
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Quick Facts
Patent No.
US 7,509,102
App. No.
11/439,023
Granted
Mar 24, 2009
Kind
B2
Abstract

A power amplifier for use in a transmitter includes a first transistor having an input, a first node and a second node, a second transistor having an input, a first node and a second node and a digital to analog conversion module. The input of the first transistor is operably coupled to receive a first input, while the input of the second transistor is operably coupled to receive a second input. The second nodes of the first and second transistors provide an output of the power amplifier. The digital to analog conversion module is operably coupled to control current through the first and second transistors based on at least one of a power control signal and an amplitude modulation control signal.

Claims (54)

1. A power amplifier for use in a transmitter, comprising:

a first transistor having an input, a first node and a second node, wherein the input of the first transistor is operably coupled to receive a first input;

a second transistor having an input, a first node, and a second node, wherein the input of the second transistor is operably coupled to receive a second input; and

a digital to analog conversion module operably coupled to control current through the first and second transistors based on at least one of a power control signal and an amplitude modulation control signal, wherein outputs of the second nodes of the first and second transistors provide an output of the power amplifier.

2. The power amplifier of claim 1 , wherein the digital to analog conversion module controls current through the first and second input transistors based on the power control signal and an in-phase modulated signal, and further comprising:

a third transistor having an input, a first node and a second node, wherein the input of the third transistor is operably coupled to receive a third input;

a fourth transistor having an input, a first node, and a second node, wherein the input of the fourth transistor is operably coupled to receive a fourth input; and

an additional digital to analog conversion module operably coupled to control current through the third and fourth transistors based on the power control signal and a quadrature-phase modulated signal, wherein outputs of the second nodes of the third and fourth transistors are combined with outputs of the second nodes of the first and second transistors to provide the output of the power amplifier.

3. The power amplifier of claim 1 , wherein the first and second inputs are phase modulated signals.

4. The power amplifier of claim 1 , wherein the amplitude modulation control signal is a reference current applied to the digital to analog conversion module and the power control signal is a digital signal applied to a digital input of the digital to analog conversion module.

5. The power amplifier of claim 1 , wherein the amplitude modulation control signal is a digital signal applied to a digital input of the digital to analog conversion module and an analog reference current is applied to the digital to analog conversion module to control the output power of the power amplifier.

6. The power amplifier of claim 1 , wherein the digital to analog conversion module includes multiple current sources operably coupled in parallel and operably coupled to the first nodes of the first and second transistors.

7. The power amplifier of claim 1 , wherein the digital to analog conversion module is operably coupled to the first nodes of the first and second transistors, and wherein the first transistor in combination with the second transistor forms a first switch pair having a first power range, and further comprising:

a second switch pair having a second power range less than the first power range and operably coupled to provide the output of the power amplifier;

a second digital to analog conversion module operably coupled to the second switch pair to control current through the second switch pair based on at least one of the power control signal and the amplitude modulation control signal; and

a switch operably coupled to select at least one of the first switch pair and the second switch pair to produce the output of the power amplifier.

8. The power amplifier of claim 7 , wherein each of the digital to analog conversion module and the second digital to analog conversion module include a respective current source.

9. The power amplifier of claim 1 , further comprising:

an inductive load operably coupled to the second nodes of the first and second transistors.

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

a filter operably coupled between the second nodes of the first and second transistors and operably coupled between the inductive load and the second nodes of the first and second transistors.

11. The power amplifier of claim 10 , wherein the first transistor is a first switching transistor and the second transistor is a second switching transistor, and further comprising:

a first cascode transistor operably coupled between the filter and the second node of the first switching transistor; and

a second cascode transistor operably coupled between the filter and the second node of the second switching transistor.

12. The power amplifier of claim 9 , wherein the inductive load is a balun.

13. The power amplifier of claim 12 , wherein the digital to analog conversion module controls the current through the first and second transistors by sourcing current through a center tab of the balun.

14. The power amplifier of claim 13 , wherein the first transistor and the second transistor form a first switch pair having a first power range, and further comprising:

a second switch pair having a second power range less than the first power range and operably coupled to the balun to provide the output of the power amplifier; and

a switch operably coupled to select one of the first switch pair and the second switch pair to produce the output of the power amplifier.

15. A polar transmitter, comprising:

a modulator operably coupled to receive an outgoing digital signal and operable to digitally modulate the outgoing digital signal to produce a phase-modulated digital signal and an amplitude-modulated digital signal;

first and second Digital-to-Analog converters (DACs) for converting the phase-modulated digital signal and the amplitude-modulated digital signal, respectively, from digital signals to analog signals to produce a phase-modulated analog signal and an amplitude-modulated analog signal;

a phase locked loop operably coupled to receive the phase-modulated analog signal and to up-convert the phase-modulated analog signal from an IF frequency to an RF frequency to produce a phase-modulated RF signal; and

a power amplifier for producing a modulated RF signal based on the phase-modulated RF signal and the amplitude-modulated analog signal, wherein the power amplifier further includes:

a first transistor having an input, a first node and a second node, wherein the input of the first transistor is operably coupled to receive a first input,

a second transistor having an input, a first node, and a second node, wherein the input of the second transistor is operably coupled to receive a second input, and

a digital to analog conversion module operably coupled to control current through the first and second transistors based on at least a power control signal and the amplitude-modulated analog signal, wherein outputs of the second nodes of the first and second transistors provide an output of the power amplifier.

16. The transmitter of claim 15 , wherein the first and second inputs correspond to the phase-modulated analog signal.

17. The transmitter of claim 16 , further comprising:

a delay operably coupled to receive the amplitude-modulated analog signal and to provide a delayed amplitude-modulated analog signal to the power amplifier.

18. The transmitter of claim 17 , further comprising:

a feed-back loop operably coupled to monitor an output of the power amplifier and to adjust the delay based on the output of the power amplifier.

19. A method for producing an amplified modulated radio frequency (RF) signal, comprising:

providing a differential switch pair and a digital to analog conversion module operably coupled to the differential switch pair;

receiving a phase-modulated RF signal at an input of the differential switch pair;

receiving an amplitude-modulated signal at the digital to analog conversion module;

generating a bias current for biasing the differential switch pair by the digital to analog conversion module, the bias current being proportional to the amplitude-modulated signal; and

producing the amplified modulated RF signal at an output of the differential switch pair in response to the phase-modulated RF signal and the bias current, the outbound modulated RF signal having an amplitude proportional to the amplitude-modulated signal.

20. The method of claim 19 , wherein the amplitude-modulated signal is a reference current, and wherein said receiving the amplitude-modulated signal at the digital to analog conversion module further comprises:

applying the reference current to the digital to analog conversion module; and

applying a digital power control signal to a digital input of the digital to analog conversion module.

21. The method of claim 19 , wherein the amplitude modulation control signal is a digital signal, and wherein said receiving the amplitude-modulated signal at the digital to analog conversion module further comprises:

applying the digital signal to a digital input of the digital to analog conversion module; and

applying an analog reference current to the digital to analog conversion module to control the power of the amplified modulated RF signal.

Assignments (6)
CORRECTIVE ASSIGNMENT TO CORRECT THE EFFECTIVE DATE OF MERGER PREVIOUSLY RECORDED AT REEL: 047195 FRAME: 0827. ASSIGNOR(S) HEREBY CONFIRMS THE MERGER. Recorded Nov 5, 2018
From: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
To: AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE. LIMITED
Reel/Frame 047924/0571 →
MERGER Recorded Oct 4, 2018
From: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
To: AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE. LIMITED
Reel/Frame 047195/0827 →
TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS Recorded Feb 3, 2017
From: BANK OF AMERICA, N.A., AS COLLATERAL AGENT
To: BROADCOM CORPORATION
Reel/Frame 041712/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 1, 2017
From: BROADCOM CORPORATION
To: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
Reel/Frame 041706/0001 →
PATENT SECURITY AGREEMENT Recorded Feb 11, 2016
From: BROADCOM CORPORATION
To: BANK OF AMERICA, N.A., AS COLLATERAL AGENT
Reel/Frame 037806/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 11, 2009
From: ROFOUGARAN, AHMADREZA (REZA); SHAMELI, AMIN
To: BROADCOM CORPORATION
Reel/Frame 022244/0478 →
Continuity (2)
Provisional Application 6079051500 · Apr 7, 2006
Related Publication 20070275676A1 · Nov 29, 2007