IP Library Granted Patent US 9,236,633
Granted Patent B2
US 9,236,633 · App. 13/916,033 · Granted Jan 12, 2016

Synthesis and applications of graphene based nanomaterials

Inventors: Junhong Chen (Shorewood, WI); Marija Gajdardziska-Josifovska (Fox Point, WI); Carol Hirschmugl (Shorewood, WI); Eric Mattson (Kenosha, WI); Haihui Pu (Milwaukee, WI); Michael Weinert (Milwaukee, WI)
Assignee: UWM Research Foundation, Inc.
H01M10/0525C01B31/043C30B7/00C30B19/00C30B29/02C30B29/60G01N27/00H01M4/583B82Y30/00B82Y40/00G01N27/127Y02E60/122Y10S977/734Y10S977/892Y10S977/932Y10S977/948Y10S977/957
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Quick Facts
Patent No.
US 9,236,633
App. No.
13/916,033
Granted
Jan 12, 2016
Kind
B2
Abstract

A composition of graphene-based nanomaterials and a method of preparing the composition are provided. A carbon-based precursor is dissolved in water to form a precursor suspension. The precursor suspension is placed onto a substrate, thereby forming a precursor assembly. The precursor assembly is annealed, thereby forming the graphene-based nanomaterials. The graphene-based nanomaterials are crystallographically ordered at least in part and configured to form a plurality of diffraction rings when probed by an incident electron beam. In one aspect, the graphene-based nanomaterials are semiconducting. In one aspect, a method of engineering an energy bandgap of graphene monoxide generally includes providing at least one atomic layer of graphene monoxide having a first energy bandgap, and applying a substantially planar strain is applied to the graphene monoxide, thereby tuning the first energy band gap to a second energy bandgap.

Claims (17)

1. A composition of graphene-based nanomaterials, the composition comprising: at least one atomic layer of graphene monoxide, wherein the grapheme monoxide is crystallographically ordered at least in part and configured to form a plurality of diffraction rings when probed by an incident electron beam; and

a nanocrystalline oxide or carbide, wherein the nanocrystalline oxide is a transition metal oxide and wherein the nanocrystalline carbide is a transition metal carbide.

2. The composition of claim 1 , further comprising at least one atomic layer of graphene.

3. The composition of claim 1 , wherein the nanocrystalline oxide is molybdenum oxide.

4. A nanostructure comprising graphene-based nanomaterials according to claim 1 , wherein the nanostructure is configured to support at least one of a metal or metal oxide atom, cluster, and nanocrystal.

5. A gas sensor comprising:

(a) one or more electrodes formed on a substrate and adapted to be operatively connected to a meter to measure an electrical characteristic between the electrodes;

(b) one or more nanostructures in contact with the one or more electrodes; and

(c) one or more nanoparticles deposited on the nanostructures, wherein the nanoparticles include the graphene-based nanomaterials according to claim 1 .

6. An electrochemical cell comprising:

an anode including the graphene-based nanomaterials according to claim 1 ;

a cathode;

a separator; and

an electrolyte.

7. An electronic device comprising:

one or more semiconducting elements including the graphene-based nanomaterials according to claim 1 ; and

one or more junctions positioned between the graphene-based nanomaterials, the junctions including conducting and insulating materials, wherein the graphene-based nanomaterials are associated with a tunable energy bandgap.

Assignments (2)
CONFIRMATORY LICENSE Recorded Dec 29, 2014
From: UNIVERSITY OF WISCONSIN MILWAUKEE
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 034708/0256 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 12, 2013
From: CHEN, JUNHONG; GAJDARDZISKA-JOSIFOVSKA, MARIJA; HIRSCHMUGL, CAROL; MATTSON, ERIC; PU, HAIHUI; WEINERT, MICHAEL
To: UWM RESEARCH FOUNDATION, INC.
Reel/Frame 031193/0894 →
Continuity (3)
Provisional Application 61658805 · Jun 12, 2012
Provisional Application 61717849 · Oct 24, 2012
Related Publication 20130344390A1 · Dec 26, 2013