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原子尺度导体中的热电输运特性。

Thermoelectric transport properties in atomic scale conductors.

作者信息

Zheng Xiaohong, Zheng Wei, Wei Yadong, Zeng Zhi, Wang Jian

机构信息

Key Laboratory of Materials Physics, Institute of Solid State Physics, Chinese Academy of Sciences, Hefei 230031, People's Republic of China.

出版信息

J Chem Phys. 2004 Nov 1;121(17):8537-41. doi: 10.1063/1.1803544.

Abstract

The thermoelectric transport properties in atomic scale conductors consisting of a Si atom connected by two electrodes are investigated. It is found that both the electrical current and the heat current have two contributions, one from the voltage and the other from the temperature gradient. The quantities such as the Seebeck thermopower and the thermal conductance that characterize the thermoelectric transport properties of the tunnel atomic junction are studied quantitatively with a first-principles technique within the framework of Landauer-Buttiker formalism in the linear response regime. A finite thermopower only exists in a very narrow range where the energy derivative of the transmission function is nonzero. The thermopower anomaly is observed in the tunneling regime in this device but this does not violate the thermodynamic law with respect to the heat current.

摘要

研究了由两个电极连接的硅原子组成的原子尺度导体中的热电输运性质。发现电流和热流都有两种贡献,一种来自电压,另一种来自温度梯度。在线性响应区域的朗道尔-布蒂克尔形式体系框架内,用第一性原理技术定量研究了诸如塞贝克热功率和热导等表征隧道原子结热电输运性质的量。有限的热功率仅存在于传输函数的能量导数不为零的非常窄的范围内。在该器件的隧穿区域观察到了热功率异常,但这并不违反关于热流的热力学定律。

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