IP Library Granted Patent US 10,934,615
Granted Patent B2
US 10,934,615 · App. 16/594,349 · Granted Mar 2, 2021

Method of metallic component surface modification for electrochemical applications

Inventors: Conghua Wang (West Windsor, NJ); Yong Tao (Peoria, IL); Lin Zhang (Burlingame, CA); Gerald A. Gontarz (Spotswood, NJ)
Assignee: TREADSTONE TECHNOLOGIES, INC.
C23C14/325C21D6/002C21D9/0068C22C14/00C22F1/183C23C4/02C23C4/08C23C4/12C23C8/10C23C14/02C23C14/021C23C14/16C23C14/165C23C14/35C23C28/321C23C28/345C23F1/26C23F1/28C23F17/00C25B15/00H01G9/055H01G11/70H01M8/021H01M8/0206H01M8/0208H01M8/0228H01M8/1018H01M4/661H01M4/662H01M4/667H01M2008/1095Y02E60/13
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Quick Facts
Patent No.
US 10,934,615
App. No.
16/594,349
Granted
Mar 2, 2021
Kind
B2
Abstract

Method for forming a metallic component surface to achieve lower electrical contact resistance. The method comprises modifying a surface chemical composition and creating a micro-textured surface structure of the metallic component that includes small peaks and/or pits. The small peaks and pits have a round or irregular cross-sectional shape with a diameter between 10 nm and 10 microns, a height/depth between 10 nm and 10 microns, and a distribution density between 0.4 million/cm 2 and 5 billion cm 2 .

Claims (17)

1. A method for forming a metallic component surface to achieve surface lower electrical contact resistance, comprising:

modifying a surface of the metallic component using a cathodic arc deposition process to form peaks on the metallic component surface to be high-pressure contact points with other solid components of a device of which the metallic component is a part;

wherein a diameter of the peaks is between 0.1 microns and 10 microns, and an electrical contact resistance of the metallic component with other solid components is less than 10 mΩ·cm 2 .

2. The method of claim 1 , wherein each peak has a round or irregular shape.

3. The method of claim 1 , further comprising using the metallic component with the modified surface as one or more metal plates of a fuel cell.

4. A metallic component having a superhydrophilic surface with low electrical contact resistance, said component comprising pits on the surface, the pits comprise holes having a diameter between 5 nm to 20 microns.

5. The metallic component of claim 4 , wherein the surface comprises additional material formed thereon and the pits are naturally formed between the additional material.

6. The metallic component of claim 5 , wherein the additional material comprises material thermally sprayed on to the surface or added to the surface by an additive manufacturing process.

7. The metallic component of claim 4 , wherein the pits are formed in areas where materials were removed from the surface of the metallic component.

8. The metallic component of claim 7 , wherein the material were removed from the surface by chemical etching, sand blasting or laser engraving.

9. The metallic component of claim 4 , wherein the pits embossed features of the metallic component.

10. The metallic component of claim 9 , wherein the embossed features were obtained by cold rolling of the metal component.

11. A metallic component having low electrical contact resistance, said component comprising:

peaks formed on a surface of the metallic component using a cathodic arc deposition process, the peaks being high-pressure contact points with other solid components of a device of which the metallic component is a part;

wherein a diameter of the peaks is between 0.1 microns and 10 microns, and an electrical contact resistance of the metallic component with other solid components is less than 10 mΩ·cm 2 .

12. The metallic component of claim 11 , wherein each peak has a round or irregular shape.

13. The metallic component of claim 11 , further comprising using the metallic component as one or more metal plates of a fuel cell.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 6, 2019
From: WANG, CONGHUA; TAO, YONG; ZHANG, LIN; GONTARZ, GERALD A.
To: TREADSTONE TECHNOLOGIES, INC.
Reel/Frame 050930/0760 →
Continuity (3)
Continuation 15130330 · Apr 15, 2016
Provisional Application 62147755 · Apr 15, 2015
Related Publication 20200102642A1 · Apr 2, 2020