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First principles calculations of solid-state thermionic transport in layered van der Waals heterostructures

机译:固态的第一原理计算在分层的范德瓦耳斯热离子运输异质结构

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This work aims at understanding solid-state energy conversion and transport in layered (van der Waals) heterostructures in contact with metallic electrodes via a first-principles approach. As an illustration, a graphene/phosphorene/graphene heterostructure in contact with gold electrodes is studied by using density functional theory (DFT)-based first principles calculations combined with real space Green's function (GF) formalism. We show that for a monolayer phosphorene, quantum tunneling dominates the transport. By adding more phosphorene layers, one can switch from tunneling- dominated transport to thermionic-dominated transport, resulting in transporting more heat per charge carrier, thus, enhancing the cooling coefficient of performance. The use of layered van der Waals heterostructures has two advantages: (a) thermionic transport barriers can be tuned by changing the number of layers, and (b) thermal conductance across these non-covalent structures is very weak. The phonon thermal conductance of the present van der Waals heterostructure is found to be 4.1 MW m(-2) K-1 which is one order of magnitude lower than the lowest value for that of covalently-bonded interfaces. The thermionic coefficient of performance for the proposed device is 18.5 at 600 K corresponding to an equivalent ZT of 0.13, which is significant for nanoscale devices. This study shows that layered van der Waals structures have great potential to be used as solid-state energy-conversion devices.
机译:这项工作旨在了解固态能量转换和传输层(van der瓦尔斯)异质结构与金属接触通过采用基于电极的方法。插图,石墨烯/ phosphorene /石墨烯异质结构与金电极利用密度泛函理论研究了吗(DFT)的第一原理计算结合真实空间格林函数(GF)形式主义。phosphorene,量子隧穿主导着交通工具。可以切换从隧道——主导运输thermionic-dominated运输,导致运送更多的热量单位电荷载体,因此,提高冷却性能系数。使用分层的范德瓦耳斯异质结构有两个优点:(a)热离子运输吗障碍可以通过改变的数量层,并在这些(b)热导率很弱非共价结构。范德瓦耳斯热导率的礼物异质结构被发现是4.1 MW m (2) k - 1这是一个数量级低于最小值的共价键接口。18.5提出设备的性能600 K对应一个等价的ZT型0.13,这是重要的纳米设备。研究表明,分层的范德瓦耳斯结构有很大的潜力作为固体能量转换设备。

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