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Journal ArticleDOI

Graphite Nanoplatelet−Epoxy Composite Thermal Interface Materials

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TLDR
In this article, the performance of a few graphene layer n ∼ 4, with a thickness of ∼ 2 nm, was investigated for epoxy composites and it was shown that the G4 GNPs provide a thermal conductivity enhancement of more than 3000% (loading of ∼25 vol %).
Abstract
Natural graphite was intercalated, thermally exfoliated, and dispersed in acetone to prepare graphite nanoplatelets (GNPs, Gn) of controlled aspect ratio. Thermal conductivity measurements indicate that few graphene layer Gn, where n ∼ 4, with a thickness of ∼2 nm function as a very efficient filler for epoxy composites. When embedded in an epoxy matrix, the G4 GNPs provide a thermal conductivity enhancement of more than 3000% (loading of ∼25 vol %), and a thermal conductivity κ = 6.44 W/mK, which surpasses the performance of conventional fillers that require a loading of ∼70 vol % to achieve these values. We attribute the outstanding thermal properties of this material to a favorable combination of the high aspect ratio, two-dimensional geometry, stiffness, and low thermal interface resistance of the GNPs.

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Journal ArticleDOI

Anisotropic Thermal and Electrical Properties of Thin Thermal Interface Layers of Graphite Nanoplatelet-Based Composites

TL;DR: In this article, the in-plane and through-plane electrical and thermal conductivities of thin thermal interface layers of graphite nanoplatelet (GNP) based composites are investigated.
Journal ArticleDOI

Facile Method to Fabricate Highly Thermally Conductive Graphite/PP Composite with Network Structures.

TL;DR: A novel fabrication method of graphite/polypropylene (PP) composites with high thermal conductivity in which graphite flakes construct a continuous thermally conductive network.
Journal ArticleDOI

Solution-based synthesis and characterization of a silver nanoparticle–graphene hybrid film

TL;DR: In this paper, a solution-based chemical approach has been used to prepare silver nanoparticle-graphene (Ag-G) hybrids through sequential reduction of graphene oxidation and silver ions.
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Thermal percolation behavior of graphene nanoplatelets/polyphenylene sulfide thermal conductivity composites

TL;DR: The volume fraction of functionalized graphene nanoplatelets influencing on the thermal conductivities of GNPs/polyphenylene sulfide (GNPs/PPS) composites is investigated in this paper.
Journal ArticleDOI

Facile preparation of graphene-based chitosan films: enhanced thermal, mechanical and antibacterial properties

TL;DR: In this paper, the authors compared the thermal and tensile properties of chitosan/small area and large area with graphite powder and graphite flakes as starting materials, respectively.
References
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Journal ArticleDOI

Two-dimensional gas of massless Dirac fermions in graphene

TL;DR: This study reports an experimental study of a condensed-matter system (graphene, a single atomic layer of carbon) in which electron transport is essentially governed by Dirac's (relativistic) equation and reveals a variety of unusual phenomena that are characteristic of two-dimensional Dirac fermions.
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Graphene-based composite materials

TL;DR: The bottom-up chemical approach of tuning the graphene sheet properties provides a path to a broad new class of graphene-based materials and their use in a variety of applications.
Journal ArticleDOI

Experimental observation of the quantum Hall effect and Berry's phase in graphene

TL;DR: In this paper, an experimental investigation of magneto-transport in a high-mobility single layer of Graphene is presented, where an unusual half-integer quantum Hall effect for both electron and hole carriers in graphene is observed.
Journal Article

Experimental Observation of Quantum Hall Effect and Berry's Phase in Graphene

TL;DR: An experimental investigation of magneto-transport in a high-mobility single layer of graphene observes an unusual half-integer quantum Hall effect for both electron and hole carriers in graphene.
Journal ArticleDOI

Electronic Confinement and Coherence in Patterned Epitaxial Graphene

TL;DR: In this paper, a single epitaxial graphene layer at the silicon carbide interface is shown to reveal the Dirac nature of the charge carriers, and all-graphene electronically coherent devices and device architectures are envisaged.
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