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通过在黑磷烯中增强正交电导实现的热电器件效率提升。

Enhanced thermoelectric efficiency via orthogonal electrical and thermal conductances in phosphorene.

机构信息

Department of Physics and Institute of Materials Science and Engineering, and ‡Department of Energy, Environmental, and Chemical Engineering, Washington University , St Louis, Missouri, United States.

出版信息

Nano Lett. 2014 Nov 12;14(11):6393-9. doi: 10.1021/nl502865s. Epub 2014 Sep 30.

Abstract

Thermoelectric devices that utilize the Seebeck effect convert heat flow into electrical energy and are highly desirable for the development of portable, solid state, passively powered electronic systems. The conversion efficiencies of such devices are quantified by the dimensionless thermoelectric figure of merit (ZT), which is proportional to the ratio of a device's electrical conductance to its thermal conductance. In this paper, a recently fabricated two-dimensional (2D) semiconductor called phosphorene (monolayer black phosphorus) is assessed for its thermoelectric capabilities. First-principles and model calculations reveal not only that phosphorene possesses a spatially anisotropic electrical conductance, but that its lattice thermal conductance exhibits a pronounced spatial-anisotropy as well. The prominent electrical and thermal conducting directions are orthogonal to one another, enhancing the ratio of these conductances. As a result, ZT may reach the criterion for commercial deployment along the armchair direction of phosphorene at T = 500 K and is close to 1 even at room temperature given moderate doping (∼2 × 10(16) m(-2) or 2 × 10(12) cm(-2)). Ultimately, phosphorene hopefully stands out as an environmentally sound thermoelectric material with unprecedented qualities. Intrinsically, it is a mechanically flexible material that converts heat energy with high efficiency at low temperatures (∼300 K), one whose performance does not require any sophisticated engineering techniques.

摘要

利用塞贝克效应的热电设备将热流转换为电能,非常适合开发便携式、固态、无源电子系统。这种设备的转换效率通过无量纲热电优值 (ZT) 来量化,ZT 与器件的电导率与热导率之比成正比。在本文中,评估了一种最近制造的二维 (2D) 半导体,称为磷烯(单层黑磷),以评估其热电性能。第一性原理和模型计算不仅揭示了磷烯具有空间各向异性的电导率,而且其晶格热导率也表现出明显的空间各向异性。突出的电导方向和热导方向彼此正交,增强了这些电导的比值。因此,ZT 可能在 T = 500 K 时沿磷烯的扶手椅方向达到商业部署的标准,并且在室温下(假设适度掺杂(∼2 × 10(16) m(-2) 或 2 × 10(12) cm(-2))) 接近 1。最终,磷烯有望成为一种具有前所未有的品质的环保型热电材料。从本质上讲,它是一种机械柔韧性材料,可在低温(∼300 K)下高效地转换热能,其性能不需要任何复杂的工程技术。

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