Graphene oxide-bonded metal foil thin film current collector and battery and supercapacitor containing same
US-2018040900-A1 · Feb 8, 2018 · US
US11469009B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11469009-B2 |
| Application number | US-201816193240-A |
| Country | US |
| Kind code | B2 |
| Filing date | Nov 16, 2018 |
| Priority date | Dec 3, 2015 |
| Publication date | Oct 11, 2022 |
| Grant date | Oct 11, 2022 |
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A process for producing a highly conducting film of conductor-bonded graphene sheets that are highly oriented, comprising: (a) preparing a graphene dispersion or graphene oxide (GO) gel; (b) depositing the dispersion or gel onto a supporting solid substrate under a shear stress to form a wet layer; (c) drying the wet layer to form a dried layer having oriented graphene sheets or GO molecules with an inter-planar spacing d 002 of 0.4 nm to 1.2 nm; (d) heat treating the dried layer at a temperature from 55° C. to 3,200° C. for a desired length of time to produce a porous graphitic film having pores and constituent graphene sheets or a 3D network of graphene pore walls having an inter-planar spacing d 002 less than 0.4 nm; and (e) impregnating the porous graphitic film with a conductor material that bonds the constituent graphene sheets or graphene pore walls to form the conducting film.
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We claim: 1. A composite film of conductor-bonded oriented graphene sheets comprising a matrix of porous graphitic film having pores and constituent graphene sheets having an inter-planar spacing d 002 from 0.3354 nm to 0.4 nm, wherein said porous graphitic film has chemically bonded graphene planes that are all essentially bonded together with one another along a length or a width direction thereof and aligned parallel to one another; and a continuous coating of a metal conductor material impregnated into gaps in said porous graphitic film and bonded un-connected graphene sheets in said porous graphitic film at least in an end-to-end manner, wherein said composite film comprises a continuous network of electron-conducting and phonon-conducting pathways, wherein said metal conductor material is selected from the group consisting of Zn, Cd, In, Bi, alloys thereof, and mixtures thereof; wherein the coating operation of graphene includes spin coating, dip coating, immersion dip coating, air knife coating, Flexo coating, gap coating, knife-over-roll coating, gravure coating, metering-rod coating, kissing coating, slot-die coating, slot-die bead coating, slide coating, tensioned-web slot die coating, roller coating, silk screen coating, rotary screen coating, extrusion coating, curtain coating, or a combination thereof; and wherein the continuous coating of metal conductor material is directly bonded to the graphene sheets. 2. The composite film of claim 1 , having a thermal conductivity from 1,000 W/mK to 1,750 W/mK. 3. The composite film of claim 1 , having an electrical conductivity from 3,000 S/cm to 20,000 S/cm. 4. The composite film of claim 1 , having a thickness from 5 nm to 5 mm. 5. The composite film of claim 1 , wherein said conductor material bridges gaps or interruptions in graphene planes, enabling barrier-free transport of electrons and phonons between graphene planes.
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