IP Library › Granted Patent US 12,738,775
Granted Patent B2
US 12,738,775 · App. 18/890,247 · Granted Sep 15, 2026

Wireless power transmitter for high fidelity communications and high power transfer

Inventors: Alberto Peralta (Chicago, IL); Pavel Shostak (San Diego, CA)
Assignee: NuCurrent, Inc.
H02J50/80H02J50/12H04B5/24
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Quick Facts
Patent No.
US 12,738,775
App. No.
18/890,247
Filed
Sep 19, 2024
Granted
Sep 15, 2026
Kind
B2
Art Unit
2836
USPC
307/104
Abstract

Wireless power transfer systems, disclosed, include one or more circuits to facilitate high power transfer at high frequencies. Such wireless power transfer systems include a damping circuit, configured to dampen a wireless power signal such that communications fidelity is upheld at high power. The damping circuit includes at least a damping transistor that is configured to receive, from the transmitter controller, a damping signal for switching the transistor to control damping during transmission of the wireless data signals. Utilizing such systems enables wireless power transfer at high frequency, such as 13.56 MHz, at voltages over 1 Watt, while maintaining fidelity of in-band communications associated with the higher power wireless power signal.

Claims (42)

1 . A wireless power transfer system comprising:

a wireless power transmission system comprising:

an amplifier, the amplifier comprising:

at least one transistor including a gate and a drain, the at least one transistor configured to receive a driving signal at the gate and invert a direct current (DC) power signal to generate inverted alternating current (AC) signals at a frequency, the inverted AC signals including in-band communications signals; and

a damping circuit (i) in connection with the drain of the at least one transistor and (ii) configured to dampen the inverted AC signals during output of the inverted AC signals, the damping circuit including a damping transistor that is configured to receive a damping signal for switching the damping transistor to control damping during output of the inverted AC signals when the in-band communications signals are transmitted, and wherein the damping circuit is in electrical parallel with a transmitter antenna of the wireless power transmission system;

a transmitter controller that is configured to (i) provide the driving signal for driving the at least one transistor of the amplifier, (ii) provide the damping signal to the damping transistor, and (iii) perform one or more of encoding the in-band communications signals, decoding the in-band communications signals, receiving the in-band communications signals, or transmitting the in-band communications signals; and

the transmitter antenna configured to receive the inverted AC signals and, based on the inverted AC signals, produce a wireless power signal and in-band communications signals; and

a wearable electronic device comprising:

a wireless power receiver system comprising:

a wireless power receiver antenna configured to receive the wireless power signal and in-band communications signals from the transmitter antenna; and

a receiver controller configured to perform one or more of encoding the in-band communications signals, decoding the in-band communications signals, receiving the in-band communications signals, or transmitting the in-band communications signals.

2 . The wireless power transfer system of claim 1 , wherein the wearable electronic device is a medical device including an embedded sensor.

3 . The wireless power transfer system of claim 1 , wherein the wearable electronic device is an activity tracker configured for use during physical activities.

4 . The wireless power transfer system of claim 1 , wherein the wearable electronic device is configured to be worn on at least a wrist of a user.

5 . The wireless power transfer system of claim 1 , wherein the wearable electronic device is one of augmented reality glasses or virtual reality glasses.

6 . The wireless power transfer system of claim 1 , wherein the damping circuit further includes a damping resistor that is in electrical series with the damping transistor and is configured to dissipate at least some power from the inverted AC signals.

7 . The wireless power transfer system of claim 6 , wherein the damping resistor has a resistor value that is configured for decreasing a rise time in the inverted AC signals.

8 . The wireless power transfer system of claim 6 , wherein the damping resistor has a resistor value that is configured for decreasing a fall time in the inverted AC signals.

9 . The wireless power transfer system of claim 1 , wherein the damping circuit further includes a damping capacitor that is in electrical series with, at least, the damping transistor.

10 . The wireless power transfer system of claim 9 , wherein the damping capacitor is configured to ensure damping is performed 180 degrees out of phase from a phase of the inverted AC signals.

11 . The wireless power transfer system of claim 9 , wherein the damping capacitor is configured to reduce one or more of undershoot conditions in the inverted AC signals, overshoot conditions in the inverted AC signals, or combinations thereof.

12 . The wireless power transfer system of claim 1 , wherein the damping circuit further includes a diode that is in electrical series with, at least, the damping transistor.

13 . The wireless power transfer system of claim 12 , wherein the diode is configured to prevent power efficiency loss in the inverted AC signals when the damping circuit is not active.

14 . The wireless power transfer system of claim 1 , wherein the inverted AC signals have a half-wave, sine wave voltage.

15 . The wireless power transfer system of claim 1 , wherein the wireless power transmission system further comprises a choke inductor connected between the DC power signal and the at least one transistor.

16 . A wireless power transfer system comprising:

a wireless power transmission system comprising:

an amplifier, the amplifier comprising:

at least one transistor including a gate and a drain, the at least one transistor configured to receive a driving signal at the gate and invert a direct current (DC) power signal to generate inverted alternating current (AC) signals at a frequency, the inverted AC signals including in-band communications signals; and

a damping circuit (i) in connection with the drain of the at least one transistor and (ii) configured to dampen the inverted AC signals during output of the inverted AC signals, the damping circuit including a damping transistor that is configured to receive a damping signal for switching the damping transistor to control damping during output of the inverted AC signals when the in-band communications signals are transmitted, and wherein the damping circuit is in electrical parallel with a transmitter antenna of the wireless power transmission system;

a transmitter controller that is configured to (i) provide the driving signal for driving the at least one transistor of the amplifier, (ii) provide the damping signal to the damping transistor, and (iii) perform one or more of encoding the in-band communications signals, decoding the in-band communications signals, receiving the in-band communications signals, or transmitting the in-band communications signals; and

the transmitter antenna configured to receive the inverted AC signals and, based on the inverted AC signals, produce a wireless power signal and in-band communications signals; and

a wearable electronic device comprising:

a load;

a wireless power receiver system comprising:

a wireless power receiver antenna configured to receive the wireless power signal and in-band communications signals from the transmitter antenna;

a power conditioning system configured to (i) receive the wireless power signal, (ii) convert the wireless power signal to a DC power signal, and (iii) provide the DC power signal to the load; and

a receiver controller configured to perform one or more of encoding the in-band communications signals, decoding the in-band communications signals, receiving the in-band communications signals, or transmitting the in-band communications signals.

17 . The wireless power transfer system of claim 16 , wherein the wearable electronic device is a medical device including an embedded sensor.

18 . The wireless power transfer system of claim 16 , wherein the wearable electronic device is an activity tracker configured for use during physical activities.

19 . The wireless power transfer system of claim 16 , wherein the wearable electronic device is configured to be worn on at least a wrist of a user.

20 . The wireless power transfer system of claim 16 , wherein the wearable electronic device is one of augmented reality glasses or virtual reality glasses.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 8, 2025
From: PERALTA, ALBERTO; SHOSTAK, PAVEL
To: NUCURRENT, INC.
Reel/Frame 070770/0562 →
Continuity (4)
Continuation 17977444 · Oct 31, 2022
Continuation 17316239 · May 10, 2021
Continuation 16914405 · Jun 28, 2020
Related Publication 20250192620A1 · Jun 12, 2025
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