IP Library Granted Patent US 12,602,563
Granted Patent B2
US 12,602,563 · App. 18/530,509 · Granted Apr 14, 2026

Radio frequency (RF) power conditioning for wake-up circuit

Inventors: Drew Anthony Schena (Manchester, NH); John Liu (Madbury, NH); Ethan A. Smith (Newburyport, MA)
Assignee: Position Imaging IP LLC
G06K19/0702H04B5/79
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Quick Facts
Patent No.
US 12,602,563
App. No.
18/530,509
Granted
Apr 14, 2026
Kind
B2
Abstract

An electronic device, comprising: a wake-up source configured to receive an electronic communication from a remote electronic device and generate a wake-up signal indicating a receipt of the electronic communication; a microcontroller configured to generate a power control signal indicating a receipt of power by the microcontroller by a power source; and a power conditioning circuit that processes the wake-up signal and the power control signal and provides the power from the power source to the microcontroller when at least one of the wake-up signal and the power control signal is in an enable state.

Claims (36)

1 . An electronic device, comprising:

a wake-up source configured to receive an electronic communication from a remote electronic device and generate a wake-up signal indicating a receipt of the electronic communication;

a microcontroller configured to generate a power control signal indicating a receipt of power by the microcontroller by a power source; and

a power conditioning circuit that processes the wake-up signal and the power control signal and provides the power from the power source to the microcontroller when at least one of the wake-up signal and the power control signal is in an enable state, wherein the power conditioning circuit is configured to receive both the wake-up signal from the wake-up source and the power control signal from the microcontroller as separate input signals that are logically combined to control power delivery to the microcontroller.

2 . The electronic device of claim 1 , wherein the electronic device is an electronic tag.

3 . The electronic device of claim 1 , wherein the power conditioning circuit includes a logic circuit that combines the wake-up signal and the power control signal using diode logic to generate a control signal for enabling power distribution.

4 . The electronic device of claim 1 , wherein the electronic device further comprises:

a first transceiver having a first antenna configured to receive at least one of NFC and RFID communications and generate a first wake-up signal; and

a second transceiver having a second antenna configured to receive the at least one of NFC and RFID communications and generate a second wake-up signal,

wherein the power conditioning circuit is configured to process at least one of the first and second wake-up signals from the first transceiver and the second transceiver independently to enable power delivery to the microcontroller.

5 . The electronic device of claim 1 , wherein the power conditioning circuit comprises a DC/DC converter disposed between a battery and the microcontroller, the DC/DC converter being disabled by default and configured to be enabled in response to a wake-up signal from the wake-up source, and further configured to remain enabled while a power control signal from the microcontroller is active, and to disable itself when both the wake-up signal and the power control signal are inactive, thereby maintaining a constant sleep-mode power consumption regardless of the number of peripheral components connected to the microcontroller.

6 . An electronic device, comprising:

a first transceiver having a first antenna;

a second transceiver having a second antenna, wherein at least one of the first and second antennae receives an electronic communication from a remote electronic device and in response at least one of the first and second transceivers generates a wake-up signal;

a microcontroller configured to generate a power control signal indicating a receipt of power by the microcontroller by a power source; and

a power conditioning circuit that processes the wake-up signal and the power control signal from the microcontroller and provides the power from the power source to the microcontroller, wherein the power conditioning circuit is configured to receive both the wake-up signal from the wake-up source and the power control signal from the microcontroller as separate input signals that are logically combined to control power delivery to the microcontroller.

7 . The electronic device of claim 6 , wherein the electronic device is an electronic tag.

8 . The electronic device of claim 6 , wherein the power conditioning circuit disables the microcontroller when it processes a disable signal in response to the wake-up signal and the power control signal indicating an inactive state.

9 . A method for reducing an energy consumption of an electronic tag, the method comprising:

receiving, by at least one transceiver of the electronic tag, an electronic communication;

outputting, by the at least one transceiver, a first signal to a power conditioning circuit; and

activating a microcontroller in response to a receipt by the power conditioning circuit of the first signal;

wherein the power conditioning circuit is configured to receive the first signal including a wake-up signal from a wake-up source which is received from the microcontroller as an input signal separate from and combined with a second signal including a power control signal to control power delivery to the microcontroller.

10 . The method of claim 9 , further comprising:

outputting, by the microcontroller, the second signal to the power conditioning circuit; and

providing a source of power to the microcontroller in response to a receipt by the power conditioning circuit of at least one of the first signal or the second signal.

11 . An electronic device, comprising:

a power source configured to provide power to the electronic device;

at least one processor in a sleep mode wherein the at least one processor does not receive the power provided by the power source;

a first circuit in communication with the at least one processor, the first circuit being configured to generate a wake-up signal;

a second circuit in communication with the first circuit to receive the wake-up signal therefrom and in communication with the at least one processor, the second circuit being configured to enable power from the power source to pass to the at least one processor in response to receiving the wake-up signal from the first circuit,

wherein, in response to receiving power from the power source, the at least one processor is configured to send a control signal to the second circuit that causes power to continue to pass to the at least one processor even if the first circuit ceases to generate the wake-up signal, the electronic device further comprising:

a third circuit that is in communication with the first circuit to receive the wake-up signal therefrom and is in communication with the at least one processor to receive the control signal therefrom, the third circuit being configured to cause the second circuit to cause the power from the power source to pass to the at least one processor upon receiving either or both the wake-up signal and control signal.

12 . The electronic device of claim 11 , wherein the power source includes a battery.

13 . The electronic device of claim 11 , wherein the first circuit is an active or passive RFID receiver or transceiver.

14 . The electronic device of claim 11 , wherein the first circuit is a near-field communication receiver or transceiver.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 6, 2026
From: SCHENA, DREW ANTHONY; LIU, JOHN; SMITH, ETHAN A.
To: POSITION IMAGING, INC.
Reel/Frame 073384/0203 →
FIRST AMENDMENT TO INTELLECTUAL PROPERTY SECURITY AGREEMENT Recorded Mar 11, 2025
From: POSITION IMAGING IP LLC; POSITION IMAGING, INC.
To: ANKURA TRUST COMPANY, LLC
Reel/Frame 070479/0814 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 26, 2025
From: POSITION IMAGING, INC.
To: POSITION IMAGING IP LLC
Reel/Frame 070342/0196 →
Continuity (2)
Provisional Application 63430592 · Dec 6, 2022
Related Publication 20240185018A1 · Jun 6, 2024
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