IP Library › Granted Patent US 12,730,012
Granted Patent B2
US 12,730,012 · App. 18/046,010 · Granted Sep 8, 2026

Gain compensation for power amplifiers using a temperature sensor circuit

Inventors: Pietro Natale Alessandro Chyurlia (Ottawa, CA); Gordon Glen Rabjohn (Ottawa, CA); Joseph A. Cuggino (Westford, MA); Anthony Francis Quaglietta (Methuen, MA)
Assignee: SKYWORKS SOLUTIONS, INC.
G01K3/08G01K7/00H03F3/19H03F2200/468
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Quick Facts
Patent No.
US 12,730,012
App. No.
18/046,010
Granted
Sep 8, 2026
Kind
B2
Abstract

According to at least one example, an amplifier circuit includes an amplifier and a temperature sensor circuit. The temperature sensor circuit includes a first transistor thermally isolated from the amplifier and being configured to sense an ambient temperature, and a second transistor thermally linked to the amplifier and being configured to sense a temperature at the amplifier, the temperature sensor circuit being a differential circuit having a first path and a second path with the first and second transistors being arranged on the first and second paths of the differential circuit respectively. The temperature sensor circuit is configured to generate an output voltage inversely proportional to a temperature difference between the ambient temperature and the temperature at the amplifier.

Claims (41)

1 . An amplifier circuit comprising:

an amplifier; and

a temperature sensor circuit including

a first transistor thermally isolated from the amplifier and being configured to sense an ambient temperature, and

a second transistor thermally linked to the amplifier and being configured to sense a temperature at the amplifier, the temperature sensor circuit being a differential circuit having a first path and a second path with the first and second transistors being arranged on the first and second paths of the differential circuit respectively,

the temperature sensor circuit being configured to generate an output voltage inversely proportional to a temperature difference between the ambient temperature and the temperature at the amplifier.

2 . The amplifier circuit of claim 1 further comprising a first resistor and a second resistor arranged on the first and second paths of the differential circuit respectively, and a third resistor arranged to couple the first and second paths of the differential circuit in parallel.

3 . The amplifier circuit of claim 1 further comprising a bias network coupled to the temperature sensor circuit and being configured to bias the amplifier with a reference current modulated at least in part by the output voltage.

4 . The amplifier circuit of claim 3 further comprising a third transistor coupled to the temperature sensor circuit and being configured to receive the output voltage, wherein the bias network comprises a fourth transistor coupled to the third transistor.

5 . The amplifier circuit of claim 4 wherein the third transistor is configured to draw less current in response to heating at the second transistor.

6 . The amplifier of claim 5 wherein the fourth transistor is configured to draw more current in response to the third transistor drawing less current.

7 . The amplifier circuit of claim 4 wherein the bias network further comprises a current mirror reference device which includes the fourth transistor.

8 . The amplifier circuit of claim 4 further comprising a fifth transistor coupled to the third transistor, and a radio frequency gain device having a sixth transistor coupled to the fourth and fifth transistors, the radio frequency gain device being configured to provide a level of gain to an input signal dependent on a current at the sixth transistor.

9 . The amplifier circuit of claim 4 wherein the third transistor comprises a base, a collector, and an emitter, the temperature sensor circuit being coupled to the base of the third transistor.

10 . The amplifier circuit of claim 9 wherein the fourth transistor comprises a base, a collector, and an emitter, the collector of the third transistor being coupled to the collector of the fourth transistor.

11 . The amplifier circuit of claim 1 wherein the first transistor comprises a base, a collector, and an emitter, the collector of the first transistor being coupled to the base of the first transistor.

12 . The amplifier circuit of claim 11 wherein the second transistor comprises a base, a collector, and an emitter, the collector of the second transistor being coupled to the base of the second transistor.

13 . The amplifier circuit of claim 1 further comprising a voltage source configured to provide a regulated input voltage to the temperature sensor circuit.

14 . The amplifier circuit of claim 1 further comprising a supply voltage source configured to provide an amplifier supply voltage to the temperature sensor circuit.

15 . The amplifier circuit of claim 1 wherein the amplifier is a first amplifier, and the amplifier circuit further comprises a second amplifier coupled to the first amplifier, and a bias network coupled to the temperature sensor circuit and being configured to bias the second amplifier with a reference current modulated at least in part by the output voltage.

16 . A wireless communication device including an amplifier circuit, the amplifier circuit comprising:

an amplifier configured to provide a radio-frequency signal; and

a temperature sensor circuit, the temperature sensor circuit including

a first transistor thermally isolated from the amplifier and being configured to sense an ambient temperature, and

a second transistor thermally linked to the amplifier and being configured to sense a temperature at the amplifier, the temperature sensor circuit being a differential circuit having a first path and a second path with the first and second transistors being arranged on the first and second paths of the differential circuit respectively,

the temperature sensor circuit being configured to generate an output voltage inversely proportional to a temperature difference between the ambient temperature and the temperature at the amplifier.

17 . A method of operating an amplifier circuit including an amplifier, the method comprising:

sensing, by a first transistor of a temperature sensor circuit, an ambient temperature, the first transistor being thermally isolated from the amplifier;

sensing, by a second transistor of the temperature sensor circuit, a temperature at the amplifier, the temperature sensor circuit being a differential circuit having a first path and a second path with the first and second transistors being arranged on the first and second paths of the differential circuit respectively; and

generating, by the temperature sensor circuit, an output voltage inversely proportional to a temperature difference between the ambient temperature and the temperature at the amplifier.

18 . The method of claim 17 wherein the temperature sensor circuit further comprises a first resistor and a second resistor arranged on the first and second paths of the differential circuit respectively, and a third resistor arranged to couple the first and second paths of the differential circuit in parallel.

19 . The method of claim 18 wherein the amplifier circuit includes a bias network coupled to the temperature sensor circuit, the method further comprising biasing the amplifier with a reference current modulated at least in part by the output voltage.

20 . The method of claim 19 wherein the amplifier circuit includes a third transistor coupled to the temperature sensor circuit and the bias network includes a fourth transistor coupled to the third transistor and to the amplifier, the method further comprising receiving, by the third transistor the output voltage from the temperature sensor circuit.

21 . An amplifier circuit comprising:

an amplifier;

a temperature sensor circuit including

a first transistor thermally isolated from the amplifier and being configured to sense an ambient temperature, and

a second transistor thermally linked to the amplifier and being configured to sense a temperature at the amplifier, the temperature sensor circuit being a differential circuit having a first path and a second path with the first and second transistors being arranged on the first and second paths of the differential circuit respectively,

the temperature sensor circuit being configured to generate an output voltage inversely proportional to a temperature difference between the ambient temperature and the temperature at the amplifier; and

a third transistor coupled to the temperature sensor circuit and being configured to receive the output voltage.

22 . The amplifier circuit of claim 21 further comprising a fourth transistor coupled to the third transistor.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 25, 2024
From: CHYURLIA, PIETRO NATALE ALESSANDRO; RABJOHN, GORDON GLEN; CUGGINO, JOSEPH A.; QUAGLIETTA, ANTHONY FRANCIS
To: SKYWORKS SOLUTIONS, INC.
Reel/Frame 066892/0638 →
Continuity (2)
Provisional Application 63255461 · Oct 14, 2021
Related Publication 20230117991A1 · Apr 20, 2023
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