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首页> 外文期刊>International Journal of Heat and Mass Transfer >Thermal conductivity and thermal rectification of nanoporous graphene: A molecular dynamics simulation
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Thermal conductivity and thermal rectification of nanoporous graphene: A molecular dynamics simulation

机译:纳米多孔石墨烯的热导率和热精馏:分子动力学模拟

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Using non-equilibrium molecular dynamics (NEMD) simulation, we study thermal properties of the so-called nanoporous graphene (NPG) sheet which contains a series of nanoporous in an ordered way and was synthesized recently (Science 360 (2018), 199). The dependence of thermal conductivity on sample size, edge chirality, and porosity concentration are investigated. Our results indicate that the thermal conductivity of NPG is about two orders smaller compared with the pristine graphene. Therefore this sheet can be used as a thermoelectric material. Also, the porosity concentration helps us to tune the thermal conductivity. Moreover, the results show that the thermal conductivity increases with growing the sample length due to ballistic transport. On the other hand, along the armchair direction, the thermal conductivity is larger than the zigzag direction. We also examined the thermal properties of the interface of NPG and graphene. The temperature drops significantly through the interface leading to an interface thermal resistance. The interface thermal resistance changes with imposed heat flux direction, and this difference cause significantly large thermal rectification factor, and heat current prefers one direction to another. Besides, to investigate those quantities fundamentally, we study the phonon density of states and scattering of them. (C) 2019 Elsevier Ltd. All rights reserved.
机译:使用非平衡分子动力学(NEMD)模拟,我们研究了所谓的纳米多孔石墨烯(NPG)片材的热性能,该片材包含有序排列的一系列纳米孔并且是最近合成的(Science 360​​(2018),199)。研究了导热系数对样品大小,边缘手性和孔隙率浓度的依赖性。我们的结果表明,与原始石墨烯相比,NPG的热导率小约两个数量级。因此,该片材可用作热电材料。同样,孔隙率浓度有助于我们调整热导率。此外,结果表明,由于弹道运输,热导率随样品长度的增加而增加。另一方面,沿着扶手椅方向,热导率大于之字形方向。我们还检查了NPG和石墨烯界面的热性能。温度通过界面显着下降,从而导致界面热阻。界面热阻随热通量方向的变化而变化,这种差异会导致很大的热整流系数,并且热电流会优先选择一个方向。此外,为了从根本上研究这些量,我们研究了状态的声子密度及其散射。 (C)2019 Elsevier Ltd.保留所有权利。

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