IP Library Granted Patent US 11,705,756
Granted Patent B2
US 11,705,756 · App. 17/237,676 · Granted Jul 18, 2023

Device for ambient thermal and vibration energy harvesting

Inventor: Paul Thibado (Fayetteville, AR)
Assignee: Board of Trustees of The University of Arkansas
H02J50/001H02N3/00
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Quick Facts
Patent No.
US 11,705,756
App. No.
17/237,676
Granted
Jul 18, 2023
Kind
B2
Abstract

An integrated circuit on a chip may include a plurality of capacitors that are connected in series and generate an AC noise signal. A selected bandwidth of the AC noise signal transmits through the series of capacitors as a first AC power signal. Respective rectifiers are positioned for receiving a positive cycle of the first AC power signal and a negative cycle of the first AC power signal. Output terminals are connected to the respective rectifiers and configured for connection to an off chip circuit. The capacitors may be fixed or variable gap capacitors.

Claims (52)

1. An energy harvesting system, comprising:

a DC voltage source connected to at least one capacitor that generates an AC noise signal;

a selected bandwidth of the AC noise signal transmitting through the capacitor as a first AC power signal;

a plurality of repeated sub-units comprising respective pairs of a forward biased diode and a reverse biased diode, wherein the repeated sub-units receive the first AC power signal;

respective positive cycle metal trace connections connected to each forward biased diode;

respective negative cycle metal trace connections connected to each reverse biased diode;

a positive cycle storage capacitor connected to each forward biased diode with the respective positive cycle metal trace connections;

a negative cycle storage capacitor connected to each reverse biased diode with the respective negative cycle metal trace connections; and

wherein the sub-units are repeated with the respective positive cycle metal trace connections connected to the positive cycle storage capacitor and respective negative cycle metal trace connections connected to the negative cycle storage capacitor to rectify the first AC power signal and charge the positive cycle storage capacitor and the negative cycle storage capacitor.

2. The system of claim 1 , wherein the AC noise signal is a thermal noise signal and the at least one capacitor is a plurality of capacitors connected in series.

3. The system of claim 1 , wherein the capacitor is configured with storage capacity of 1 pico-Farad.

4. The system of claim 1 , wherein the forward biased diodes and the reversed biased diodes are connected to additional diodes in a Cockcroft-Walton full-wave rectifier and multiplier circuits.

5. The system of claim 1 , wherein the plurality of capacitors comprises variable gap capacitors generating both the first AC power signal from the AC noise signal and a second AC power signal from a variable gap capacitor discharge cycle.

6. The system of claim 1 , wherein the capacitor is fully charged by the DC voltage source to a stable state.

7. The system of claim 1 , wherein the diodes are selected based on the rate of conductance to match the capacitor as a noise source.

8. The system of claim 1 , wherein the AC noise signal comprises conductivity due to conductive carrier defect hopping through the capacitor.

9. The system of claim 1 , wherein the DC voltage source provides a voltage that corresponds to turn on voltages for the diodes.

10. An integrated circuit on a chip, the circuit comprising:

at least one capacitor connected to the circuit to generate an AC noise signal;

a selected bandwidth of the AC noise signal transmitting through the capacitor as a first AC power signal;

a plurality of repeated sub-units comprising respective pairs of a forward biased diode and a reverse biased diode, wherein the repeated sub-units receive the first AC power signal;

respective positive cycle metal trace connections connected to each forward biased diode;

respective negative cycle metal trace connections connected to each reverse biased diode;

output terminals connected to the respective sub-units and configured for connection to an off chip circuit,

wherein the off chip circuit comprises a DC voltage source connected to the at least one capacitor, a positive cycle storage capacitor and negative cycle storage capacitor charged with the first AC power signal, and

wherein the sub-units are repeated with the respective positive cycle metal trace connections connected to the positive cycle storage capacitor and respective negative cycle metal trace connections connected to the negative cycle storage capacitor to rectify the first AC power signal and charge the positive cycle storage capacitor and the negative cycle storage capacitor.

11. The integrated circuit of claim 10 , wherein the AC noise signal results from ambient thermal energy.

12. The integrated circuit of claim 10 , wherein the forward biased diode is a first diode configured as a first respective rectifier of the first AC power signal to produce a first output power signal from a positive cycle of the first AC power signal.

13. The integrated circuit of claim 12 , wherein the reverse biased diode is a second diode configured as a second respective rectifier of the first AC power signal to produce a second output power signal from a negative cycle of the first AC power signal.

14. An integrated circuit, comprising:

at least one capacitor generating an AC noise signal;

a selected bandwidth of the AC noise signal transmitting through the capacitor as a first AC power signal;

a plurality of repeated sub-units comprising respective pairs of a forward biased transistor and a reverse biased transistor, wherein the repeated sub-units receive the first AC power signal;

respective positive cycle metal trace connections connected to each forward biased transistor;

respective negative cycle metal trace connections connected to each reverse biased transistor;

output terminals connected to the respective sub-units and configured for connection to an off chip circuit,

wherein the off chip circuit comprises a DC voltage source connected to the at least one capacitor, a positive cycle storage capacitor and negative cycle storage capacitor charged with the first AC power signal, and

wherein the sub-units are repeated with respective positive cycle metal trace connections connected to the positive cycle storage capacitor and respective negative cycle metal trace connections connected to the negative cycle storage capacitor to rectify the first AC power signal and charge the positive cycle storage capacitor and the negative cycle storage capacitor.

15. A method of assembling an energy harvesting circuit, comprising:

connecting at least one capacitor within the energy harvesting circuit;

forming a capacitive region in the energy harvesting circuit by defining the at least one capacitor with a first capacitor plate having an initial separation distance with respect to a first surface of a free-standing membrane, wherein the first surface of the free-standing membrane defines a second capacitor plate;

exposing the free-standing membrane to ambient thermal energy to induce charge accumulation in the capacitive region, the ambient thermal energy also inducing a thermal AC noise signal;

selecting the capacitance of the capacitor to select a bandwidth of the AC noise signal transmitting through the capacitor as a first AC power signal; and

rectifying the first AC power signal to charge a positive cycle storage capacitor and a negative cycle storage capacitor with the first AC power signal, wherein the rectifying comprises transmitting the first AC power signal to a plurality of repeated sub-units comprising:

respective pairs of a forward biased diode and a reverse biased diode;

respective positive cycle metal trace connections connected to each forward biased diode;

respective negative cycle metal trace connections connected to each reverse biased diode;

a positive cycle storage capacitor connected to each forward biased diode with the respective positive cycle metal trace connections;

a negative cycle storage capacitor connected to each reverse biased diode with the respective negative cycle metal trace connections; and

wherein the sub-units are repeated with respective positive cycle metal trace connections connected to the positive cycle storage capacitor and respective negative cycle metal trace connections connected to the negative cycle storage capacitor to rectify the first AC power signal and charge the positive cycle storage capacitor and the negative cycle storage capacitor.

16. The method of claim 15 , further comprising, positioning the membrane relative to the first capacitor plate such that the membrane is unobstructed and free to vibrate in response to ambient thermal energy, wherein vibration of the membrane defines cyclical ripple formations along the first surface, and wherein each ripple formation alternates between a peak and a trough relative to the first capacitor plate to change the initial separation distance in a variable gap capacitor.

17. The method of claim 16 , further comprising discharging the capacitive region across a respective rectifier to direct accumulated charges to add a second power signal to the energy harvesting circuits.

Assignments (5)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 12, 2025
From: UNIVERSITY OF ARKANSAS TECHNOLOGY VENTURES
To: BOARD OF TRUSTEES OF THE UNIVERSITY OF ARKANSAS
Reel/Frame 071573/0222 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 2, 2023
From: UNIVERSITY OF ARKANSAS TECHNOLOGY VENTURES
To: BOARD OF TRUSTEES OF THE UNIVERSITY OF ARKANSAS
Reel/Frame 063838/0865 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 3, 2023
From: THIBADO, PAUL
To: UNIVERISTY OF ARKANSAS TECHNOLOGY VENTURES
Reel/Frame 062877/0085 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 3, 2023
From: UNIVERSITY OF ARKANSAS TECHNOLOGY VENTURES
To: BOARD OF TRUSTEES OF THE UNIVERSITY OF ARKANSAS
Reel/Frame 062877/0089 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 22, 2022
From: THIBADO, PAUL
To: UNIVERSITY OF ARKANSAS TECHNOLOGY VENTURES
Reel/Frame 059673/0819 →
Continuity (2)
Provisional Application 63013631 · Apr 22, 2020
Related Publication 20210336480A1 · Oct 28, 2021
Cited By (1)
US 12,381,418