IP Library › Granted Patent US 12,750,076
Granted Patent B2
US 12,750,076 · App. 18/765,727 · Granted Sep 29, 2026

Power detectors with enhanced dynamic range

Inventor: Lui Lam (Lexington, MA)
Assignee: Skyworks Solutions, Inc.
H04B1/0458H03F3/189H03G3/3042H03F1/36
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Quick Facts
Patent No.
US 12,750,076
App. No.
18/765,727
Granted
Sep 29, 2026
Kind
B2
Abstract

Apparatus and methods for power detection with enhanced dynamic range are provided. In certain embodiments, a front end system includes a power amplifier that amplifies a radio frequency (RF) input signal to generate an RF output signal, a directional coupler that generates a sensed RF signal based on sensing the RF output signal from the power amplifier, and a power detector that processes the sensed RF signal to generate a detection signal indicating an output power of the power amplifier. Additionally, the power detector includes two or more detection paths providing different amounts of gain to the sensed RF signal from the directional coupler.

Claims (29)

1 . A mobile device comprising:

a transceiver configured to generate a radio frequency transmit signal; and

a front end system including a power amplifier configured to amplify the radio frequency transmit signal, a directional coupler configured to generate a sensed radio frequency signal based on sensing the radio frequency transmit signal amplified by the power amplifier, and a power detector configured to process the sensed radio frequency signal to generate a detection signal indicating an output power of the power amplifier, the power detector including an amplifier and a bypass switch connected between an input of the amplifier and an output of the amplifier, the bypass switch selectively activated based on a transmit power of the power amplifier.

2 . The mobile device of claim 1 further comprising an antenna configured to transmit the radio frequency transmit signal after amplification by the power amplifier.

3 . The mobile device of claim 1 wherein the power detector further includes a rectifier, the input of the amplifier connected to the directional coupler and the output of the amplifier connected to the rectifier.

4 . The mobile device of claim 3 wherein the power detector further includes a linear to logarithmic circuit configured to control generation of the detection signal based on a rectified signal from the rectifier.

5 . The mobile device of claim 4 wherein the power detector further includes a buffer connected to an output of the linear to logarithmic circuit.

6 . The mobile device of claim 1 wherein the front end system further includes a serial interface configured to receive transmit power control data indicating the transmit power of the power amplifier, the bypass switch selectively activated based on the transmit power control data.

7 . The mobile device of claim 1 wherein the power detector further includes a coarse power detection circuit configured to generate a coarse power detection signal indicating the transmit power of the power amplifier, the bypass switch selectively activated based on the coarse power detection signal.

8 . The mobile device of claim 1 wherein the front end system further includes a low noise amplifier and a multi-throw switch including a first throw connected to an output of the power amplifier through the directional coupler and a second throw connected to an input of the low noise amplifier.

9 . A front end system comprising:

a power amplifier configured to amplify a radio frequency transmit signal;

a directional coupler configured to generate a sensed radio frequency signal based on sensing the radio frequency transmit signal amplified by the power amplifier; and

a power detector configured to process the sensed radio frequency signal to generate a detection signal indicating an output power of the power amplifier, the power detector including an amplifier and a bypass switch connected between an input of the amplifier and an output of the amplifier, the bypass switch selectively activated based on a transmit power of the power amplifier.

10 . The front end system of claim 9 wherein the power detector further includes a rectifier, the input of the amplifier connected to the directional coupler and the output of the amplifier connected to the rectifier.

11 . The front end system of claim 10 wherein the power detector further includes a linear to logarithmic circuit configured to control generation of the detection signal based on a rectified signal from the rectifier.

12 . The front end system of claim 11 wherein the power detector further includes a buffer connected to an output of the linear to logarithmic circuit.

13 . The front end system of claim 9 further comprising a serial interface configured to receive transmit power control data indicating the transmit power of the power amplifier, the bypass switch selectively activated based on the transmit power control data.

14 . The front end system of claim 9 wherein the power detector further includes a coarse power detection circuit configured to generate a coarse power detection signal indicating the transmit power of the power amplifier, the bypass switch selectively activated based on the coarse power detection signal.

15 . The front end system of claim 9 further comprising a low noise amplifier and a multi-throw switch including a first throw connected to an output of the power amplifier through the directional coupler and a second throw connected to an input of the low noise amplifier.

16 . A method of transmit power detection, the method comprising:

amplifying a radio frequency transmit signal using a power amplifier;

generating a sensed radio frequency signal based on sensing the radio frequency transmit signal after amplification by the power amplifier using a directional coupler;

processing the sensed radio frequency signal to generate a detection signal indicating an output power of the power amplifier using a power detector that includes an amplifier and a bypass switch connected between an input of the amplifier and an output of the amplifier; and

selectively activating the bypass switch based on a transmit power of the power amplifier.

17 . The method of claim 16 further comprising providing rectification to the output of the amplifier using a rectifier.

18 . The method of claim 17 further comprising providing linear to logarithmic conversion to a rectified signal from the rectifier using a linear to logarithmic circuit.

19 . The method of claim 16 further comprising receiving transmit power control data indicating the transmit power of the power amplifier over a serial interface, and selectively activating the bypass switch based on the transmit power control data.

20 . The method of claim 16 further comprising generating a coarse power detection signal indicating the transmit power of the power amplifier using a coarse power detection circuit, and selectively activating the bypass switch based on the coarse power detection signal.

Continuity (4)
Continuation 18304163 · Apr 20, 2023
Continuation 16947068 · Jul 16, 2020
Provisional Application 62877457 · Jul 23, 2019
Related Publication 20240364371A1 · Oct 31, 2024
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