Graphene reinforced materials and related methods of manufacture
10836132 ยท 2020-11-17
Assignee
Inventors
- Ivan V. Vlassiouk (Oak Ridge, TN, US)
- Ilia N. Ivanov (Knoxville, TN)
- Panagiotis G. Datskos (Knoxville, TN, US)
Cpc classification
Y10T428/30
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
C04B2235/96
CHEMISTRY; METALLURGY
B32B1/00
PERFORMING OPERATIONS; TRANSPORTING
Y10T156/1038
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B32B18/00
PERFORMING OPERATIONS; TRANSPORTING
B32B2255/10
PERFORMING OPERATIONS; TRANSPORTING
International classification
B23B9/00
PERFORMING OPERATIONS; TRANSPORTING
C04B35/622
CHEMISTRY; METALLURGY
B32B1/00
PERFORMING OPERATIONS; TRANSPORTING
B32B18/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Graphene reinforced materials and related methods of manufacture are provided. The graphene reinforced materials include graphene sheet or scroll, graphene-polymer sheet or scroll, and graphene-carbon sheet or scroll, each having material properties that are attractive across a broad range of applications and industries. The graphene reinforced materials generally include monolayer or multilayer graphene that is synthesized by annealing a catalyst substrate within a CVD chamber, introducing a hydrocarbon gas as a carbon source with the CVD chamber to form a layer of graphene on the catalyst substrate, detaching the catalyst substrate from the layer of graphene, and rolling the layer of graphene onto itself to form a scroll, optionally with the addition of a polymer layer or carbonized layer on the graphene layer.
Claims
1. A graphene-reinforced article comprising: a sheet material comprising a polymer and having a first major surface opposite a second major surface; and a graphene layer coextensive with and joined to at least one of the first major surface and the second major surface of the polymer sheet material to form a composite structure, wherein the composite structure includes the graphene layer and the polymer sheet material rolled into a multi-walled cylindrical scroll having a spiral cross-section, the thickness of the graphene layer being less than 20 nm and the cylindrical scroll having a yield tensile strength greater than 1 GPa, wherein the polymer is carbonized and includes a thickness of between 20 nm and 10 m, inclusive.
2. The graphene-reinforced article of claim 1 wherein the polymer is selected from the group consisting of lignin, polyacrylonitrile, polymethyl methacrylate, polystyrene, polycarbonate, polyimides, polypropylene, polyethylene terephthalate, and polyvinyl chloride.
3. The graphene-reinforced article of claim 2 wherein the polymer is carbonized by a method including heating the graphene-reinforced article in air to a temperature ranging from 200 C. to 300 C. followed by heating the graphene-reinforced article under inert conditions to a temperature ranging from 1000 C. to about 3000 C.
4. The graphene reinforced article of claim 1 wherein the graphene layer is multi-layer graphene.
5. The graphene-reinforced article of claim 1 further including a metal substrate joined to a surface of the graphene layer opposite of the sheet material.
6. The graphene-reinforced article of claim 5 wherein the metal substrate includes at least one of copper, nickel, iron, cobalt, platinum, gold, titanium, aluminum, and steel.
7. The graphene-reinforced article of claim 1 wherein the graphene reinforced article is substantially free of a metal substrate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
DETAILED DESCRIPTION OF THE CURRENT EMBODIMENTS
(11) The current embodiments include substantially pure graphene scroll, graphene reinforced sheet, graphene reinforced scroll, and related methods of manufacture. As set forth more fully below, the graphene scroll, the graphene reinforced sheet, and the graphene reinforced scroll are formed by CVD deposition, optionally achieving a tensile strength that exceeds that of carbon fiber and aramid, and including material properties that are attractive across a broad range of applications and industries.
(12) Referring now to
(13) Annealing the catalyst substrate is depicted as step 10 in
(14) Annealing conditions can be selected to promote graphene grain growth, avoid vaporization of the catalyst substrate, and avoid substantial surface oxidation of the catalyst substrate. The annealing conditions include an annealing temperature, a temperature ramp rate, and an annealing duration. For example, annealing can occur at a temperature between about 600 C. to about 1100 C., with a temperature ramp rate from about 10 C./min to about 1000 C./min, and an annealing duration from about 1 minute to about 120 minutes. In the current embodiment, annealing is generally performed in a CVD chamber in the presence of hydrogen gas at atmospheric pressure. In other embodiments, annealing is performed at atmospheric pressure in the presence of one or more noble gases e.g., helium, neon, argon, or xenon, or in the presence of an inert gas such as nitrogen. Alternatively, annealing can be performed in a low pressure environment or in a vacuum environment within a CVD chamber.
(15) Introducing a hydrocarbon as a gas source is depicted as step 12 in
(16) Detaching the catalyst substrate from the at least one layer of graphene is depicted as step 14 in
(17) Consolidating or rolling the graphene layer onto itself to form a scroll is depicted as step 16 in
(18) The above embodiment therefore provides a method of preparing a substantially pure graphene scroll. The graphene scroll can have a yield tensile strength greater than 1 GPa, optionally greater than 10 GPa (e.g., between 10 GPa and 30 GPa), and further optionally greater than 30 GPa (e.g., between 30 GPa and 50 GPa). The graphene scroll can include graphene crystals having hexagon or star-like grains with an average grain size sizes of 1 m to 1 cm, optionally 1 m to 1 mm, further optionally 1 m to 100 m, and still further optionally 1 m to 10 m. The graphene can include spectra intensity ratios of I.sub.D/I.sub.G less than or equal to 1, less than or equal to 0.1, less than or equal to 0.01, and less than or equal to 0.001, for example.
(19) The graphene scroll can include single-layer or multi-layer graphene formed on (and later detached from) various catalyst substrates (e.g., copper, nickel, cobalt, iron) and rolled up to form the graphene scroll. The above embodiment can be modified to include a polymer layer or a carbon layer, forming heterostructures or composites. The composites can include single-layer graphene and/or multi-layer graphene. Multi-layer graphene can be prepared by the consequent transfer of several graphene layers on top of each other or growing multi-layer graphene directly on a catalyst substrate.
(20) More particularly, and with reference to
(21) The sheet composite is optionally rolled onto itself to form a thread as depicted as step 16 in
(22) After polymer deposition, and before scrolling, the polymer can be heat treated to carbonize the polymer as optionally shown in step 20 of
EXAMPLE
(23) Graphene-acrylic scrolls were synthesized according to the following method, described with reference to
(24) Graphene was synthesized by chemical vapor deposition under both atmospheric pressure and low pressure using methane as a precursor and using copper foil as a base layer. PMMA 495A4 solution available from MicroChem Corp. of Newton Mass. was spincoated at 2000 rpm on the copper-graphene sample. The copper base layer was then dissolved in 0.1M FeCl.sub.3, which resulted in a graphene-reinforced PMMA sheet (PMMA having a thickness of about 200 nm). The graphene-reinforced PMMA sheet was floated on deionized water and rolled up to form a scroll.
(25) Tensile strength was measured for the graphene reinforced PMMA scroll against unreinforced (e.g., pure) PMMA scrolls. Tensile strength measurements are depicted in
=F/A=0.34N/(0.05m*200E-9m)=34 MPa(1)
Tensile strength measurements for graphene-reinforced PMMA are depicted in
=F/A=0.3N/(0.05m*0.34E-9m)=18 GPa(2)
(26) Preliminary data suggested that even non-optimized conditions for graphene synthesis can yield materials with a tensile strength of 18 GPa, which is approximately 15% of the maximum theoretical value, five times stronger than aramid and three times stronger than carbon fiber.
(27) The above description is that of current embodiments of the invention. Various alterations and changes can be made without departing from the spirit and broader aspects of the invention as defined in the appended claims, which are to be interpreted in accordance with the principles of patent law including the doctrine of equivalents. Any reference to elements in the singular, for example, using the articles a, an, the, or said, is not to be construed as limiting the element to the singular.