IP Library Granted Patent US 10,861,617
Granted Patent B2
US 10,861,617 · App. 15/862,199 · Granted Dec 8, 2020

Graphene oxide-coated graphitic foil and processes for producing same

Inventors: Aruna Zhamu (Springboro, OH); Wei Xiong (Dayton, OH); Bor Z. Jang (Centerville, OH)
Assignee: Global Graphene Group, Inc.
H01B1/04C01B32/192C01B32/198C01B32/21C01B32/23B82Y30/00B82Y40/00C01P2006/10C01P2006/40C01P2006/90Y10S977/734Y10S977/742Y10S977/89Y10T428/24975Y10T428/30
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,861,617
App. No.
15/862,199
Granted
Dec 8, 2020
Kind
B2
Abstract

A graphene oxide-coated graphitic foil, composed of a graphitic substrate or core layer having two opposed primary surfaces and at least a graphene oxide coating layer deposited on at least one of the two primary surfaces, wherein the graphitic substrate layer has a thickness preferably from 0.34 nm to 1 mm, and the graphene oxide coating layer has a thickness preferably from 0.5 nm to 1 mm and an oxygen content of 0.01%-40% by weight based on the total graphene oxide weight. The graphitic substrate layer may be preferably selected from flexible graphite foil, graphene film, graphene paper, graphite particle paper, carbon-carbon composite film, carbon nanofiber paper, or carbon nanotube paper. This graphene oxide-coated laminate exhibits a combination of exceptional thermal conductivity, electrical conductivity, mechanical strength, surface smoothness, surface hardness, and scratch resistance unmatched by any thin-film material of comparable thickness range.

Claims (20)

1. A process for producing a graphene oxide-coated graphitic foil, said process comprising: (a) preparing a core or substrate layer of a graphitic material; (b) preparing a graphene oxide gel having graphene oxide molecules dispersed in a fluid medium, wherein the graphene oxide gel is optically transparent or translucent; (c) depositing graphene oxide gel onto a surface of the core or substrate layer to form a coating thereon; (d) partially or completely removing said fluid medium from the coating to form a coated laminate; and (e) heat-treating the coated substrate or the coated laminate to form said graphene oxide-coated graphitic foil, wherein the graphene oxide coating layer has a thickness from 1 nm to 10 mm, an oxygen content of 0.01% to 40% by weight based on the total graphene oxide weight, and comprises a unitary graphene layer or a single crystal of oriented graphene planes that are parallel to one another, and wherein the graphene-coated graphitic foil has a thickness from 10 μm to 10 mm, a thermal conductivity of 600 W/mK or greater, a physical density of 1.4 g/cm 3 or greater, and a tensile strength of 10 MPa or greater.

2. The process for producing the graphene oxide-coated graphitic foil of claim 1 , wherein said graphene oxide gel is prepared by immersing a graphitic material in an oxidizing agent and wherein said graphitic material is selected from natural graphite, artificial graphite, mesophase carbon, mesophase pitch, mesocarbon microbead, soft carbon, hard carbon, coke, carbon fiber, carbon nanofiber, carbon nanotube, or a combination thereof.

3. The process for producing the graphene oxide-coated graphitic foil of claim 1 , wherein said graphene oxide gel has an oxygen content from 0.01% to 46% by weight.

4. The process for producing the graphene oxide-coated graphitic foil of claim 1 , wherein said graphene oxide gel is composed of graphene oxide molecules dispersed in an acidic medium having a pH value of no higher than 5.

5. The process for producing the graphene oxide-coated graphitic foil of claim 1 , wherein said graphene oxide gel comprises graphene oxide molecules having a molecular weight between 200 g/mole and 43,000 g/mole.

6. The process for producing the graphene oxide-coated graphitic foil of claim 1 , wherein said graphitic substrate or core layer comprises flexible graphite foil, graphene film, graphene paper, graphite particle paper, carbon-carbon composite film, carbon nanotube paper, carbon nanofiber mat, graphite-epoxy composite films, carbon-carbon composite, or carbon paper.

7. The process for producing the graphene oxide-coated graphitic foil of claim 1 , wherein said graphitic substrate or core layer is graphene film comprising pristine graphene, graphene oxide, reduced graphene oxide, graphene fluoride, hydrogenated graphene, doped graphene, functionalized graphene, multi-layer graphene sheets having a thickness of 3.35 nm to 33.5 nm, pristine graphene containing no oxygen, and combinations thereof.

8. The process for producing the graphene oxide-coated graphitic foil of claim 1 , wherein said graphitic substrate or core layer is flexible graphite foil produced by re-compression of exfoliated graphite worms or exfoliated graphite flakes of natural graphite and/or artificial graphite.

9. The process for producing the graphene oxide-coated graphitic foil of claim 1 , wherein the graphitic core has a thickness from 1 nm to 200 μm.

10. The process for producing the graphene oxide-coated graphitic foil of claim 1 , wherein said step of heat-treating the coated substrate or the coated laminate is carried out at a temperature from 100° C. to 3000° C.

11. The process for producing the graphene oxide-coated graphitic foil of claim 1 , including chemical linking or merging of graphene oxide molecules to form a unitary graphene layer.

12. The process for producing the graphene oxide-coated graphitic foil of claim 1 , further comprising a step of compressing said graphene oxide-coated graphitic foil before, during, or after heat treatment.

13. The process for producing the graphene oxide-coated graphitic foil of claim 1 , further comprising a step of depositing a layer of electrically insulating material onto the graphene oxide-coated graphitic foil.

14. The process for producing the graphene oxide-coated graphitic foil of claim 13 , wherein the electrically insulating material is PET or epoxy resin.

15. The process for producing the graphene oxide-coated graphitic foil of claim 1 , wherein said step (a) of preparing a core or substrate layer of a graphitic material includes feeding a sheet of a graphitic material from a roller to a coating zone, and the process comprises a step of depositing graphene oxide gel onto a surface of said sheet of a graphitic material to form a graphene oxide gel-coated sheet and further comprises collecting said coated sheet on a collector roller.

16. The process for producing the graphene oxide-coated graphitic foil of claim 1 , wherein the graphene oxide-coated graphitic foil has a thermal conductivity from 600 W/mK to 1,900 W/mK.

17. The process for producing the graphene oxide-coated graphitic foil of claim 1 , wherein the graphene oxide-coated graphitic foil has a physical density from 1.4 g/cm 3 to 2.24 g/cm 3 .

18. The process for producing the graphene oxide-coated graphitic foil of claim 1 , wherein the graphene oxide-coated graphitic foil has an electrical conductivity from 5,000 S/cm to 20,000 S/cm.

19. The process for producing the graphene oxide-coated graphitic foil of claim 1 , wherein the graphene oxide-coated graphitic foil has a tensile strength greater from 40 MPa to 120 MPa.

20. The process for producing the graphene oxide-coated graphitic foil of claim 1 , wherein the graphene oxide-coated graphitic foil has a Rockwell hardness from 60 to 88.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 17, 2019
From: NANOTEK INSTRUMENTS, INC.
To: GLOBAL GRAPHENE GROUP, INC.
Reel/Frame 049784/0650 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 9, 2018
From: ZHAMU, ARUNA; XIONG, WEI; JANG, BOR Z
To: NANOTEK INSTRUMENTS, INC.
Reel/Frame 044568/0561 →