IP Library › Granted Patent US 10,147,863
Granted Patent B2
US 10,147,863 · App. 14/879,506 · Granted Dec 4, 2018

Pyroelectric sandwich thermal energy harvesters

Inventors: Tian-Bing Xu (Hampton, VA); Jin Ho Kang (Newport News, VA); Emilie J. Siochi (Newport News, VA); Glen C. King (Williamsburg, VA)
Assignee: The United States of America as represented by the Administrator of NASA
H01L37/02
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Quick Facts
Patent No.
US 10,147,863
App. No.
14/879,506
Granted
Dec 4, 2018
Kind
B2
Abstract

Systems, methods, and devices of the various embodiments provide pyroelectric sandwich thermal energy harvesters. In the various embodiment pyroelectric sandwich thermal energy harvesters, generated electrical energy may be stored in a super-capacitor/battery as soon as it is generated. The various embodiment pyroelectric sandwich thermal energy harvesters may harvest electrical energy from any environment where temperature variations occur. The various embodiment pyroelectric sandwich thermal energy harvesters may be power sources for space equipment and vehicles in space and/or on earth, as well as the for wireless sensor networks, such as health monitoring systems of oil pipes, aircraft, bridges, and buildings.

Claims (28)

1. A pyroelectric sandwich thermal energy harvester, comprising:

first and second protective layers constructed of a thermally conductive material;

first and second electrode layers positioned adjacent to the first and second protective layers, respectively, such that the first and second electrode layers are sandwiched between the first and second protective layers; and

a pyroelectric layer sandwiched between the first and second electrode layers, the pyroelectric layer being poled to align a dipole moment perpendicular to the pyroelectric layer, wherein a thermal expansion coefficient of the first and second protective layers is larger than a thermal expansion coefficient of the pyroelectric layer.

2. The energy harvester of claim 1 , wherein the pyroelectric layer includes one or more of lithium tantalate, zinc oxide, lithium niobate, and lead zirconium titanate.

3. The energy harvester of claim 1 , wherein the pyroelectric layer is one of a polycrystalline ceramic, a single crystal material, an electroactive polymers, and a nanocomposite.

4. A pyroelectric power generator, comprising:

a substrate; and

at least one pyroelectric sandwich thermal energy harvester imbedded in the substrate, the pyroelectric sandwich thermal energy harvester comprising:

first and second protective layers constructed of a thermally conductive material;

first and second electrode layers positioned adjacent to the first and second protective layers, respectively such that the first and second electrode layers are sandwiched between the first and second protective layers; and

a pyroelectric layer sandwiched between the two electrode layers, the pyroelectric layer being poled to align a dipole moment perpendicular to the pyroelectric layer, wherein a thermal expansion coefficient of the first and second protective layers is larger than a thermal expansion coefficient of the pyroelectric layer.

5. The pyroelectric power generator of claim 4 , further comprising an energy harvesting and storage circuit connected to the at least one pyroelectric sandwich thermal energy harvester.

6. The pyroelectric power generator of claim 5 , wherein the energy harvesting and storage circuit comprises at least one rectifier and at least one storage device.

7. The pyroelectric power generator of claim 6 , wherein the at least one storage device includes a capacitor or a battery.

8. The pyroelectric power generator of claim 4 , wherein the pyroelectric sandwich thermal energy harvester comprises two or more of the pyroelectric sandwich thermal energy harvesters connected together.

9. The pyroelectric power generator of claim 8 , wherein the two or more pyroelectric sandwich thermal energy harvesters are connected in parallel.

10. The pyroelectric power generator of claim 8 , wherein the two or more pyroelectric sandwich thermal energy harvesters are connected in series.

11. A method, comprising:

providing a pyroelectric power generator, comprising:

at least one pyroelectric sandwich thermal energy harvester, the pyroelectric sandwich thermal energy harvester comprising:

first and second protective layers constructed of a thermally conductive material;

first and second electrode layers adjacent to the first and second protective layers, respectively such that the first and second electrode layers are sandwiched between the first and second protective layers; and

a pyroelectric layer sandwiched between the first and second electrode layers, the pyroelectric layer being poled to align a dipole moment perpendicular to the pyroelectric layer, wherein a thermal expansion coefficient of the first and second protective layers is larger than a thermal expansion coefficient of the pyroelectric layer; and

an energy harvesting and storage circuit connected to the at least one pyroelectric sandwich thermal energy harvester; and

coupling the pyroelectric power generator to a portion of a structure such that the pyroelectric power generator generates electric charge energy.

12. The method of claim 11 , wherein the structure is one or more of a space facility, an aircraft, a satellite, a vehicle, a building, a bridge, a pipe, a portable electronic device, and a solar cell.

13. The method of claim 11 , wherein the structure is a vehicle and the portion of the structure is an exhaust line.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 21, 2018
From: XU, TIAN-BING; KANG, JIN HO; NATIONAL INSTITUTE OF AEROSPACE ASSOCIATES
To: NATIONAL INSTITUTE OF AEROSPACE ASSOCIATES; UNITED STATES OF AMERICA AS REPRESENTED BY THE ADMINISTRATOR OF NASA
Reel/Frame 045304/0946 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 4, 2017
From: SIOCHI, EMILIE J.; KING, GLEN C.
To: UNITED STATES OF AMERICA AS REPRESENTED BY THE ADMINISTRATOR OF THE NATIONAL AERONAUTICS AND SPACE ADMINISTRATION
Reel/Frame 040841/0419 →
Continuity (2)
Provisional Application 62061878 · Oct 9, 2014
Related Publication 20160104831A1 · Apr 14, 2016
Cited By (1)
US 12,621,077