Methods for reducing thermal resistance of carbon nanotube arrays or sheets

US2020251401A1 · US · A1

Patent metadata
FieldValue
Publication numberUS-2020251401-A1
Application numberUS-201916673407-A
CountryUS
Kind codeA1
Filing dateNov 4, 2019
Priority dateSep 21, 2011
Publication dateAug 6, 2020
Grant date

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  1. Title

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  2. Abstract

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  5. First independent claim

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Abstract

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Carbon nanotube (CNT) forests or sheets coated and/or bonded at room temperature with one or more coatings were measured to produce thermal resistances that are on par with conventional metallic solders. These results were achieved by reducing the high contact resistance at CNT tips and/or sidewalls, which has encumbered the development of high-performance thermal interface materials based on CNTs. Resistances as low as 4.9±0.3 mm2-K/W were achieved for the entire polymer-coated CNT interface structure.

First claim

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1 - 28 . (canceled) 29 . A coated array or sheet of carbon nanotubes comprising an array comprising a substrate and a plurality of vertically aligned carbon nanotubes attached to or supported by the substrate, wherein the plurality of vertically aligned carbon nanotubes are present at a density between about 1×10 7 and 1×10 11 carbon nanotubes per mm 2 on the substrate, or a sheet comprising a plurality of carbon nanotubes aligned in plane with the sheet surface, and wherein tips of the plurality of vertically aligned carbon nanotubes of the array or tips of the plurality of carbon nanotubes aligned in plane with the sheet surface are coated with an effective amount of two or more conformal coatings to reduce thermal resistance of the plurality of vertically aligned carbon nanotubes of the array or the plurality of carbon nanotubes aligned in plane with the sheet surface, as compared to an array or sheet having uncoated carbon nanotube tips when measured by a photoacoustic method, wherein the plurality of vertically aligned carbon nanotubes of the array or the plurality of carbon nanotubes aligned in plane with the sheet surface, each comprise carbon nanotubes with sidewalls which are uncoated by the two or more conformal coatings, wherein at least one of the two or more conformal coatings comprises oligomeric material, polymeric material, or a combination thereof; and at least one of the two or more conformal coatings comprises a flowable or phase change material selected from the group consisting of paraffin waxes, polyethylene waxes, hydrocarbon-based waxes, liquid metals, oils, organic-inorganic eutectics, inorganic-inorganic eutectics, and blends thereof. 30 . The array or sheet of claim 29 , wherein the polymeric material is a conjugated polymer which is an aromatic, heteroaromatic, or non-aromatic polymer. 31 . The array or sheet of claim 29 , wherein the paraffin waxes, polyethylene waxes, hydrocarbon-based waxes have a melting temperature above 80° C., 90° C., 100° C., 110° C., 120° C., or 130° C. 32 . The array or sheet of claim 29 , wherein the polymeric material is a non-conjugated polymer selected from the group consisting of polyvinyl alcohol, poly(methyl methacrylate), polydimethylsiloxane, and combinations thereof. 33 . The array or sheet of claim 29 , wherein the polymeric material is a pressure sensitive adhesive. 34 . The array or sheet of claim 29 , wherein the two or more conformal coatings are present in an amount effective to reduce the thermal resistance of the array or sheet of carbon nanotubes by about 50%, as compared to the array or sheet having uncoated carbon nanotube tips. 35 . The array or sheet of claim 29 , further comprising a plurality of metallic particles. 36 . The array or sheet of claim 35 , wherein the metallic particles are selected from the group consisting of palladium nanoparticles, gold nanoparticles, silver nanoparticles, titanium nanoparticles, iron nanoparticles, nickel nanoparticles, copper nanoparticles, and combinations thereof. 37 . The array or sheet of claim 29 , wherein the flowable or phase change materials displace air between the carbon nanotubes and improve contact of the distal ends of the carbon nanotubes to a surface. 38 . A method of making the coated carbon nanotube array or sheet of claim 29 , the method comprising the steps of: providing an array or sheet comprising a plurality of vertically aligned carbon nanotubes, and coating tips of the plurality of vertically aligned carbon nanotubes of the array or sheet with two or more conformal coatings in an amount effective to lower the thermal resistance of the plurality of vertically aligned carbon nanotubes of the array or sheet; wherein the plurality of vertically aligned carbon nanotubes of the array or sheet each comprise carbon nanotubes with sidewalls which are uncoated by the two or more conformal coatings, and wherein at least one of the two or more conformal coatings comprises oligomeric material, polymeric material, or a combination thereof; and at least one of the two or more conformal coatings comprises a flowable or phase change material selected from the group consisting of paraffin waxes, polyethylene waxes, hydrocarbon-based waxes, liquid metals, oils, organic-inorganic eutectics, inorganic-inorganic eutectics, and blends thereof. 39 . The method of claim 38 , wherein the two or more conformal coatings are formed by spray coating onto the array or sheet or are coated onto the array or sheet using electrochemical deposition. 40 . The method of claim 38 , further comprising a step of exposing the two or more conformal coatings to a solvent or solvents to form a gel or viscous liquid and pressing the coated array or sheet to allow the two or more conformal coatings to flow and fill interface voids; and optionally further comprising a step of removing the solvent or solvents to solidify the coating. 41 . The method of claim 38 , wherein the coating step comprises dipping the array or sheet into a coating solution or a coating melt. 42 . The method of claim 38 , wherein the polymeric material is a conjugated polymer which is an aromatic, heteroaromatic, or non-aromatic polymer. 43 . The method of claim 38 , wherein the paraffin waxes, polyethylene waxes, hydrocarbon-based waxes have a melting temperature above 80° C., 90° C., 100° C., 110° C., 120° C., or 130° C. 44 . The method of claim 38 , wherein the polymeric material is a non-conjugated polymer selected from the group consisting of polyvinyl alcohol, poly(methyl methacrylate), polydimethylsiloxane, and combinations thereof. 45 . The method of claim 38 , wherein the polymeric material is a pressure sensitive adhesive. 46 . The method of claim 38 , further comprising a step of applying plurality of metallic particles onto the array or sheet. 47 . A coated array or sheet of carbon nanotubes comprising an array comprising a substrate and a plurality of vertically aligned carbon nanotubes attached to or supported by the substrate, wherein the plurality of vertically aligned carbon nanotubes are present at a density between about 1×10 7 and 1×10 11 carbon nanotubes per mm 2 on the substrate, or a sheet comprising a plurality of carbon nanotubes aligned in plane with the sheet surface, and wherein tips of the plurality of vertically aligned carbon nanotubes of the array or tips of the plurality of carbon nanotubes aligned in plane with the sheet surface are coated with an effective amount of two or more conformal coatings to reduce thermal resistance of the plurality of vertically aligned carbon nanotubes of the array or the plurality of carbon nanotubes aligned in plane with the sheet surface, as compared to an array or sheet having uncoated carbon nanotube tips when measured by a photoacoustic method, wherein the plurality of vertically aligned carbon nanotubes of the array or the plurality of carbon nanotubes aligned in plane with the sheet surface, each comprise carbon nanotubes with sidewalls which are uncoated by the two or more conformal coatings, and wherein at least one of the two or more conformal coatings comprises oligomeric material, polymeric material, or a combination thereof; and at least one of the two or more conformal coatings comprises a hot glue and/or a hot melt adhesive.

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Classifications

  • Fillings or auxiliary members in containers or in encapsulations for thermal protection or control · CPC title

  • H10W40/25Primary

    characterised by their materials · CPC title

  • H10W40/255Primary

    having a laminate or multilayered structure, e.g. direct bond copper [DBC] ceramic substrates · CPC title

  • Self-sustaining carbon mass or layer with impregnant or other layer · CPC title

  • Structurally defined web or sheet [e.g., overall dimension, etc.] · CPC title

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What does patent US2020251401A1 cover?
Carbon nanotube (CNT) forests or sheets coated and/or bonded at room temperature with one or more coatings were measured to produce thermal resistances that are on par with conventional metallic solders. These results were achieved by reducing the high contact resistance at CNT tips and/or sidewalls, which has encumbered the development of high-performance thermal interface materials based on C…
Who is the assignee on this patent?
Georgia Tech Res Inst
What technology area does this patent fall under?
Primary CPC classification H10W40/25. Mapped technology areas include Electricity.
When was this patent published?
Publication date Thu Aug 06 2020 00:00:00 GMT+0000 (Coordinated Universal Time) (A1). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).