Exceptional in-plane and interfacial thermal transport in graphene/2D-SiC van der Waals heterostructures
Abstract Graphene based van der Waals heterostructures (vdWHs) have gained substantial interest recently due to their unique electrical and optical characteristics as well as unprecedented opportunities to explore new physics and revolutionary design of nanodevices. However, the heat conduction perf...
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doaj-9b2305bbb1ff42ee81d55205e95084bc2020-12-20T12:33:57ZengNature Publishing GroupScientific Reports2045-23222020-12-0110111610.1038/s41598-020-78472-2Exceptional in-plane and interfacial thermal transport in graphene/2D-SiC van der Waals heterostructuresMd. Sherajul Islam0Imon Mia1Shihab Ahammed2Catherine Stampfl3Jeongwon Park4Department of Electrical and Electronic Engineering, Khulna University of Engineering and TechnologyDepartment of Electrical and Electronic Engineering, Khulna University of Engineering and TechnologyDepartment of Electrical and Electronic Engineering, Khulna University of Engineering and TechnologySchool of Physics, The University of SydneyDepartment of Electrical and Biomedical Engineering, University of NevadaAbstract Graphene based van der Waals heterostructures (vdWHs) have gained substantial interest recently due to their unique electrical and optical characteristics as well as unprecedented opportunities to explore new physics and revolutionary design of nanodevices. However, the heat conduction performance of these vdWHs holds a crucial role in deciding their functional efficiency. In-plane and out-of-plane thermal conduction phenomena in graphene/2D-SiC vdWHs were studied using reverse non-equilibrium molecular dynamics simulations and the transient pump-probe technique, respectively. At room temperature, we determined an in-plane thermal conductivity of ~ 1452 W/m-K for an infinite length graphene/2D-SiC vdWH, which is superior to any graphene based vdWHs reported yet. The out-of-plane thermal resistance of graphene → 2D-SiC and 2D-SiC → graphene was estimated to be 2.71 × 10−7 km2/W and 2.65 × 10−7 km2/W, respectively, implying the absence of the thermal rectification effect in the heterobilayer. The phonon-mediated both in-plane and out-of-plane heat transfer is clarified for this prospective heterobilayer. This study furthermore explored the impact of various interatomic potentials on the thermal conductivity of the heterobilayer. These findings are useful in explaining the heat conduction at the interfaces in graphene/2D-SiC vdWH and may provide a guideline for efficient design and regulation of their thermal characteristics.https://doi.org/10.1038/s41598-020-78472-2 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Md. Sherajul Islam Imon Mia Shihab Ahammed Catherine Stampfl Jeongwon Park |
spellingShingle |
Md. Sherajul Islam Imon Mia Shihab Ahammed Catherine Stampfl Jeongwon Park Exceptional in-plane and interfacial thermal transport in graphene/2D-SiC van der Waals heterostructures Scientific Reports |
author_facet |
Md. Sherajul Islam Imon Mia Shihab Ahammed Catherine Stampfl Jeongwon Park |
author_sort |
Md. Sherajul Islam |
title |
Exceptional in-plane and interfacial thermal transport in graphene/2D-SiC van der Waals heterostructures |
title_short |
Exceptional in-plane and interfacial thermal transport in graphene/2D-SiC van der Waals heterostructures |
title_full |
Exceptional in-plane and interfacial thermal transport in graphene/2D-SiC van der Waals heterostructures |
title_fullStr |
Exceptional in-plane and interfacial thermal transport in graphene/2D-SiC van der Waals heterostructures |
title_full_unstemmed |
Exceptional in-plane and interfacial thermal transport in graphene/2D-SiC van der Waals heterostructures |
title_sort |
exceptional in-plane and interfacial thermal transport in graphene/2d-sic van der waals heterostructures |
publisher |
Nature Publishing Group |
series |
Scientific Reports |
issn |
2045-2322 |
publishDate |
2020-12-01 |
description |
Abstract Graphene based van der Waals heterostructures (vdWHs) have gained substantial interest recently due to their unique electrical and optical characteristics as well as unprecedented opportunities to explore new physics and revolutionary design of nanodevices. However, the heat conduction performance of these vdWHs holds a crucial role in deciding their functional efficiency. In-plane and out-of-plane thermal conduction phenomena in graphene/2D-SiC vdWHs were studied using reverse non-equilibrium molecular dynamics simulations and the transient pump-probe technique, respectively. At room temperature, we determined an in-plane thermal conductivity of ~ 1452 W/m-K for an infinite length graphene/2D-SiC vdWH, which is superior to any graphene based vdWHs reported yet. The out-of-plane thermal resistance of graphene → 2D-SiC and 2D-SiC → graphene was estimated to be 2.71 × 10−7 km2/W and 2.65 × 10−7 km2/W, respectively, implying the absence of the thermal rectification effect in the heterobilayer. The phonon-mediated both in-plane and out-of-plane heat transfer is clarified for this prospective heterobilayer. This study furthermore explored the impact of various interatomic potentials on the thermal conductivity of the heterobilayer. These findings are useful in explaining the heat conduction at the interfaces in graphene/2D-SiC vdWH and may provide a guideline for efficient design and regulation of their thermal characteristics. |
url |
https://doi.org/10.1038/s41598-020-78472-2 |
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