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单层MoSSe、双层MoSSe以及石墨烯/MoSSe异质纳米带的热电性能增强

Enhanced thermoelectric performance of monolayer MoSSe, bilayer MoSSe and graphene/MoSSe heterogeneous nanoribbons.

作者信息

Deng Shuo, Li Lijie, Guy Owen J, Zhang Yan

机构信息

Wuhan University of Technology, Wuhan 430070, China.

出版信息

Phys Chem Chem Phys. 2019 Aug 21;21(33):18161-18169. doi: 10.1039/c9cp03639c.

Abstract

Graphene has many superlative thermal, electrical and mechanical properties. However, the thermoelectric performance of graphene is limited by its high thermal conductivity and small Seebeck coefficient. To address this problem, monolayer and bilayer MoSSe nanoribbons together with graphene/MoSSe heterostructures have been investigated in this work. The electron and phonon transport, and the thermoelectric properties of the monolayer and bilayer MoSSe nanoribbons, together with the graphene/MoSSe heterostructures, have been analyzed by first-principles methods in conjunction with non-equilibrium Green's function and the Landauer equation. The results indicate that figure of merit (ZT) values of 2.01 and 1.64 can be achieved for graphene/SeMoS stacked nanoribbons and symmetric armchair MoSSe nanoribbons respectively at 300 K, which are much higher than the ZT value of prime graphene (ZT ∼ 0.05). The maximum ZT values of these structures increase at T < 350 K, while the maximum ZT decreases at high temperatures (T > 350 K). However, the maximum ZT values of the symmetric armchair MoSSe nanoribbons show an increase with temperatures up to 550 K. From our analysis, phonon thermal conductivity and temperature are key factors determining the ZT values in MoSSe nanoribbons. The significantly enhanced ZT values make graphene/SeMoS stacking nanoribbons and symmetric armchair MoSSe nanoribbons promising candidates for application in thermoelectric devices.

摘要

石墨烯具有许多卓越的热学、电学和力学性能。然而,石墨烯的热电性能受到其高导热率和小塞贝克系数的限制。为了解决这个问题,本工作研究了单层和双层MoSSe纳米带以及石墨烯/MoSSe异质结构。通过第一性原理方法结合非平衡格林函数和朗道尔方程,分析了单层和双层MoSSe纳米带以及石墨烯/MoSSe异质结构的电子和声子输运以及热电性能。结果表明,在300 K时,石墨烯/SeMoS堆叠纳米带和对称扶手椅型MoSSe纳米带的优值(ZT)值分别可达2.01和1.64,远高于原始石墨烯的ZT值(ZT ∼ 0.05)。这些结构的最大ZT值在T < 350 K时增加,而在高温(T > 350 K)时最大ZT值减小。然而,对称扶手椅型MoSSe纳米带的最大ZT值在温度高达550 K时随温度升高而增加。通过我们的分析,声子热导率和温度是决定MoSSe纳米带ZT值的关键因素。显著提高的ZT值使石墨烯/SeMoS堆叠纳米带和对称扶手椅型MoSSe纳米带成为热电装置应用的有前途的候选材料。

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