IP Library Granted Patent US 9,466,435
Granted Patent B2
US 9,466,435 · App. 14/328,128 · Granted Oct 11, 2016

Supercapacitor

Inventor: Matthew H. Ervin (Clarksville, MD)
Assignee: The United States of America as represented by the Secretary of the Army
H01G11/26H01G11/28H01G11/32H01G11/36H01G11/38H01G11/86
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Quick Facts
Patent No.
US 9,466,435
App. No.
14/328,128
Granted
Oct 11, 2016
Kind
B2
Abstract

A supercapacitor or electrochemical capacitor includes spaced apart electrodes which are separated from each other by a separator made of an electrical insulating material. Each electrode is formed of carbonaceous material and capable of being impregnated with a liquid electrolyte. Metal current collectors are provided on the sides of the electrodes opposite from the separator. The electrodes have holes extending through the electrodes to reduce ionic impedance in order to produce faster charging and discharging of the device.

Claims (30)

1. An electrochemical capacitor comprising:

spaced apart electrodes separated by a separator made of an electrical insulating material, each of said electrodes formed of carbonaceous material and capable of being impregnated with a liquid electrolyte; and

a pair of metal current collectors on the sides of said electrodes opposite from said separator,

said electrodes having a plurality of spaced holes extending through the carbonaceous material between said metal current collector and said separator,

wherein the holes are spaced apart between about 9-13 microns to create a direct pathway for travel of the electrolytic ions during charging and discharging of the capacitor thereby significantly increasing the operational frequency of the capacitor.

2. The capacitor as defined in claim 1 wherein said holes are evenly spaced from each other in a grid pattern.

3. The capacitor as defined in claim 1 further comprising a plurality of nanotubes, nanoparticles, and/or nanowires intermixed with said carbonaceous material forming the electrodes.

4. The capacitor as defined in claim 1 wherein said carbonaceous material comprises: graphene, carbon nanotubes, porous carbon, activated carbon, or any combination thereof.

5. The capacitor as defined in claim 1 wherein said carbonaceous material further comprises: a binder, conductivity enhancing material, a pseudo-capacitive material, or any combination thereof.

6. The capacitor as defined in claim 1 , wherein the holes have a pitch of approximately 2000 lines per inch.

7. The capacitor as defined in claim 1 , wherein the holes are spaced apart so as to constitute about 8% of the overall area of one side of at least one of the electrodes.

8. The capacitor as defined in claim 1 , wherein the capacitor is configured to operate at a frequency up to about 10 Hz.

9. A method of manufacturing an electrochemical capacitor comprising the steps of:

creating at least two electrodes formed of carbonaceous material and capable of being impregnated with a liquid electrolyte,

forming a plurality of holes through said carbonaceous material of said electrodes, wherein the holes are spaced apart between about 9-13 microns to create a direct pathway for travel of the electrolytic ions through the electrode thickness during charging and discharging of the capacitor thereby significantly increasing the operational frequency of the capacitor,

positioning a first side of each electrode on opposite sides of a separator constructed of an electrical insulating material, and

attaching an electrically conductive current collector on a second side of each of the electrodes.

10. The method as defined in claim 9 wherein said holes are nanometers to microns in diameter.

11. The method as defined in claim 9 wherein said forming step comprises lasing said holes through said electrodes.

12. The method as defined in claim 9 wherein said forming step comprises forming said holes by anisotropic etching.

13. The method as defined in claim 12 wherein said anisotropic etching step comprises oxygen reactive ion etching or argon ion milling.

14. The method as defined in claim 9 further comprising mixing a plurality of nanotubes, nanoparticles, and/or nanowires in said carbonaceous material forming the electrodes.

15. The method as defined in claim 9 wherein the holes are patterned using photolithography.

16. The method as defined in claim 9 wherein the holes are patterned using a mesh.

17. The method as defined in claim 16 , wherein the at least two electrodes are created by depositing the carbonaceous material on the mesh and the mesh is also used as a template for forming the holes.

18. The method as defined in claim 16 , wherein the mesh has a transmission percentage of about 5-10%.

19. A method of manufacturing an electrochemical capacitor comprising:

providing at least two electrodes formed of carbonaceous material and capable of being impregnated with a liquid electrolyte, and

forming a plurality of holes through said carbonaceous material of said electrodes,

wherein the holes are spaced apart between about 9-13 microns to create a direct pathway for travel of the electrolytic ions during charging and discharging of the capacitor thereby significantly increasing the operational frequency of the capacitor.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 15, 2014
From: ERVIN, MATTHEW H.
To: UNITED STATES OF AMERICA AS REPRESENTED BY THE SECRETARY OF THE ARMY, THE
Reel/Frame 033349/0480 →
Continuity (1)
Related Publication 20160012978A1 · Jan 14, 2016