GRAPHENE SHEET COMBINING GRAPHITE FLAKE STRUCTURE AND ITS MANUFACTURING METHOD, AND SLURRY FOR MANUFACTURING THE SAME
20170058176 ยท 2017-03-02
Inventors
- Tung CHOU (New Taipei City, TW)
- Feng-Yu WU (New Taipei City, TW)
- Chih-Chieh CHAN (New Taipei City, TW)
- Wen-Hsien LIAO (New Taipei City, TW)
- Hsiu-Pin CHANG (New Taipei City, TW)
- Lain-Jong LI (New Taipei City, TW)
- Jonathan ROSS (New Taipei City, TW)
Cpc classification
C09D7/70
CHEMISTRY; METALLURGY
B82Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B82Y40/00
PERFORMING OPERATIONS; TRANSPORTING
C09D1/00
CHEMISTRY; METALLURGY
H01B1/24
ELECTRICITY
H01B1/04
ELECTRICITY
International classification
B05D1/32
PERFORMING OPERATIONS; TRANSPORTING
C09D1/00
CHEMISTRY; METALLURGY
B05D1/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A graphene sheet combining graphite flake structure includes a graphite nanoplatelet material and a graphene material. The graphene material is mixed in the graphite nanoplatelet material, and the content of the graphene material is between 1% and 80% of the graphite nanoplatelet material. A slurry for manufacturing the graphene sheet combining graphite flake structure and a manufacturing method for the graphene sheet combining graphite flake structure are also disclosed.
Claims
1. A graphene sheet combining graphite flake structure, comprising: a graphite nanoplatelet material; and a graphene material mixed in the graphite nanoplatelet material, wherein the content of the graphene material is between 1% and 80% of the graphite nanoplatelet material.
2. The graphene sheet combining graphite flake structure of claim 1, wherein the graphite nanoplatelet material comprises a plurality of graphite nanoplatelets, a size of the graphite nanoplatelets is between 5 m and 200 m, and a thickness of the graphite nanoplatelets is between 0.1 m and 0.5 m.
3. The graphene sheet combining graphite flake structure of claim 1, wherein the graphene material comprises a plurality of graphenes, a size of the graphenes is between 1 m and 50 m, and a thickness of the graphenes is between 0.002 m and 0.02 m.
4. The graphene sheet combining graphite flake structure of claim 1, wherein a thickness of the graphene sheet combining graphite flake structure is between 2 m and 100 m.
5. The graphene sheet combining graphite flake structure of claim 1, wherein the graphene sheet combining graphite flake structure is flexible.
6. A manufacturing method of a graphene sheet combining graphite flake structure, comprising following steps of: adding a graphite nanoplatelet material into a solvent and stirring to form a well-mixed solution, wherein a weight percentage of the graphite nanoplatelet material is between 0.1% and 10%; adding a graphene material in the solution and stirring to form a well-mixed slurry, wherein the content of the graphene material is between 1% and 80% of the graphite nanoplatelet material; applying the slurry on an object and drying the slurry to form a graphite coating; and pressing the graphite coating to form the graphene sheet combining graphite flake structure.
7. The manufacturing method of claim 6, wherein a thickness of the graphite coating is between 10 m and 500 m.
8. The manufacturing method of claim 6, wherein the solvent is water, dimethylformamide (DMF), tetrahydrofuran (THF), ketones, alcohols, acetic acid acetate, or toluene.
9. The manufacturing method of claim 8, wherein the ketones comprises N-methylpyrrolidone (NMP) or acetone, and the alcohols comprises ethanol or ethylene glycol.
10. The manufacturing method of claim 6, wherein a weight percentage of the graphite nanoplatelet material is between 0.2% and 10%.
11. The manufacturing method of claim 6, wherein the graphite nanoplatelet material comprises a plurality of graphite nanoplatelets, a size of the graphite nanoplatelets is between 5 m and 200 m, and a thickness of the graphite nanoplatelets is between 0.1 m and 0.5 m.
12. The manufacturing method of claim 6, wherein the graphene material comprises a plurality of graphenes, a size of the graphenes is between 1 m and 50 m, and a thickness of the graphenes is between 0.002 m and 0.02 m.
13. The manufacturing method of claim 6, wherein the slurry is applied by a coating method or a printing method.
14. The manufacturing method of claim 13, wherein the coating method comprises a spray coating or a spin coating, and the printing method comprises an inkjet printing or a screen printing.
15. The manufacturing method of claim 6, wherein the applied slurry is dried at a temperature lower than 400 C. for 1 minute to 24 hours.
16. The manufacturing method of claim 6, wherein a thickness of the graphene sheet combining graphite flake structure is between 2 m and 100 m.
17. The manufacturing method of claim 6, further comprising a step of: departing the graphene sheet combining graphite flake structure from the object.
18. The manufacturing method of claim 6, wherein the graphene sheet combining graphite flake structure is flexible.
19. A slurry for manufacturing a graphene sheet combining graphite flake structure, comprising: a solvent; a graphite nanoplatelet material comprising a plurality of graphite nanoplatelets; and a graphene material comprising a plurality of graphenes; wherein, the graphite nanoplatelet material and the graphene material are mixed in the solvent, a weight percentage of the graphite nanoplatelet material is between 0.1% and 10%, and the content of the graphene material is between 1% and 80% of the graphite nanoplatelet material.
20. The slurry of claim 19, wherein a weight percentage of the graphite nanoplatelet material is between 0.2% and 10%, a size of the graphite nanoplatelets is between 5 m and 200 m, a thickness of the graphite nanoplatelets is between 0.1 m and 0.5 m, a size of the graphenes is between 1 m and 50 m, and a thickness of the graphenes is between 0.002 m and 0.02 m.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026] The invention will become more fully understood from the detailed description and accompanying drawings, which are given for illustration only, and thus are not limitative of the present invention, and wherein:
[0027]
[0028]
[0029]
[0030]
DETAILED DESCRIPTION OF THE INVENTION
[0031] The present invention will be apparent from the following detailed description, which proceeds with reference to the accompanying drawings, wherein the same references relate to the same elements.
[0032]
[0033] As shown in
[0034] As shown in
[0035] As shown in
[0036] Accordingly, the slurry prepared by the steps S01 and S02 contains the solvent S, the graphite nanoplatelet material 11 and the graphene material 12, which are mixed to form a viscus slurry (like jelly). In this slurry, the weight percentage of the graphite nanoplatelet material 11 is between 0.1% and 10% and, preferably, is between 0.2% and 10%, and the content of the graphene material 12 is between 1% and 80% of the graphite nanoplatelet material 11.
[0037] Referring to
[0038] With reference to
[0039] In different embodiments, the object O is not a planar object. For example, as shown in
[0040]
[0041] Different the manufacturing method of
[0042] To be noted, in some embodiments, the graphene sheet combining graphite flake structure 1 and the object O together can be attached to the heat source directly, and this invention is not limited.
[0043] In this embodiment, the graphene sheet combining graphite flake structure 1 is flexible and includes the graphite nanoplatelet material 11 and the graphene material 12. The graphene material 12 is mixed in the graphite nanoplatelet material 11, and the content of the graphene material 12 is between 1% and 80% of the graphite nanoplatelet material 11. The graphite nanoplatelet material 11 includes a plurality of graphite nanoplatelets. The size of the graphite nanoplatelets is between 5 m and 200 m, and the thickness of the graphite nanoplatelets is between 0.1 m and 0.5 m. In addition, the graphene material 12 includes a plurality of graphenes. The size of the graphenes is between 1 m and 50 m, and the thickness of the graphenes is between 0.002 m and 0.02 m. The thickness D of the graphene sheet combining graphite flake structure 1 is between 2 m and 100 m.
[0044] As mentioned above, the graphite nanoplatelet material and graphene material contained in the graphene sheet combining graphite flake structure 1 have good heat conductivity, so that the heat can be rapidly dissipated from the heat source. Besides, the thickness D of the graphene sheet combining graphite flake structure 11 is between 2 m and 100 m, so that the graphene sheet combining graphite flake structure 1 can be used as a heat-dissipation structure with better heat conductivity and thinner thickness. These features are suitable for the light and thin requirement of the current electronic products. The conventional graphite platelet made of only the graphite nanoplatelet has a heat conductive coefficient of about 200 W/m-K. However, the heat conductive coefficient of the graphene sheet combining graphite flake structure 1 containing 10% of the graphene material 12 (graphene) is about 400 W/m-K. Therefore, when the graphene sheet combining graphite flake structure 1 is applied to dissipate the heat of an electronic component (e.g. CPU), the heat can be rapidly dissipated. Moreover, it is possible to cooperate with a heat dissipating device, which includes a heat sink and a fan, for removing the heat transmitted from the electronic component to the graphene sheet combining graphite flake structure 1, thereby decreasing the temperature of the electronic component. In addition, the graphene sheet combining graphite flake structure 1 of the present invention can be applied to the heat source with different shapes or a larger surface. Besides, the graphene material 12 makes the graphene sheet combining graphite flake structure 1 have high heat and electricity conductivities and better flexibility. Thus, the entire structure intensity of the graphene sheet combining graphite flake structure 1 is stronger. Furthermore, the graphene sheet combining graphite flake structure 1 also has an electromagnetic shielding property. In one embodiment, when the thickness of the graphene sheet combining graphite flake structure 1 is 10 m, it can provide an electromagnetic shielding effect of 37 dB45 dB.
[0045]
[0046] The graphene sheet combining graphite flake structure of
[0047] In summary, the graphene sheet combining graphite flake structure contains a graphite nanoplatelet material and a graphene material mixed in the graphite nanoplatelet material. The content of the graphene material is between 1% and 80% of the graphite nanoplatelet material. In addition, the slurry of the invention contains a solvent, a graphite nanoplatelet material and a graphene material, and the graphite nanoplatelet material and the graphene material are mixed in the solvent. The weight percentage of the graphite nanoplatelet material is between 0.1% and 10%, and the content of the graphene material is between 1% and 80% of the graphite nanoplatelet material. Since the graphite nanoplatelet material and graphene material contained in the graphene sheet combining graphite flake structure and the slurry have good heat conductivity, the heat can be rapidly dissipated from the heat source. Accordingly, the graphene sheet combining graphite flake structure of the invention has better heat conducting effect. Besides, the graphene material allows the graphene sheet combining graphite flake structure to have a flexible property, so that the entire structure becomes stronger.
[0048] In addition, the graphene sheet combining graphite flake structure of the invention can fit the heat sources with different shapes, or it can be attached to a heat source with a large surface. This feature can satisfy the high heat-dissipation requirements of the electronic devices with different shapes. Moreover, the graphene sheet combining graphite flake structure of the invention further has an electromagnetic shielding effect.
[0049] Although the invention has been described with reference to specific embodiments, this description is not meant to be construed in a limiting sense. Various modifications of the disclosed embodiments, as well as alternative embodiments, will be apparent to persons skilled in the art. It is, therefore, contemplated that the appended claims will cover all modifications that fall within the true scope of the invention.