Artificial thermal flow control on thermoelectric device by tuning electrode absorptivity

IF 5.5 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Sohei Saito, Ayaha Yamamoto, Yu-Jung Lu, Takuo Tanaka, Wakana Kubo
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引用次数: 0

Abstract

Thermoelectric conversion is a direct conversion of thermal energy to electricity, triggered by the Seebeck effect. Typically, the configuration of a thermoelectric device and the absorptivity of both electrodes exhibit symmetrical optical characteristics between the hot and cold ends, and these factors usually are not expected to affect the direction of the thermal gradient. Here, we first demonstrate the ability to reverse the direction of thermal flow across a thermoelectric element by adjusting the absorptivity of electrodes at both ends in an environment with uniform thermal radiation. For example, when the metamaterial or fullerene electrodes were attached to one end a p-type thermoelectric element, they generated output voltages of 19.0 and -4.0 V, respectively, in an environment with uniform thermal radiation at 364 K. Using this insight, we demonstrated power generation on a \(\pi\)-shaped thermoelectric device consisting only of p-type thermoelectric legs by designing the absorptivity of the electrode at each end. Our findings will provide valuable insights as a device guideline for conventional thermoelectric devices.

调节电极吸收率的热电装置人工热流控制
热电转换是由塞贝克效应引发的热能到电能的直接转换。通常,热电器件的结构和两个电极的吸收率在热端和冷端之间表现出对称的光学特性,并且这些因素通常不会影响热梯度的方向。在这里,我们首先展示了在具有均匀热辐射的环境中,通过调整两端电极的吸收率来逆转热电元件热流方向的能力。例如,将超材料电极或富勒烯电极一端连接在p型热电元件上,在364 K的均匀热辐射环境下,分别产生19.0和-4.0 V的输出电压。利用这一见解,我们通过设计电极两端的吸收率,演示了在\(\pi\)形状的热电装置上发电,该装置仅由p型热电腿组成。我们的发现将为传统热电器件提供有价值的器件指南。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Nanoscale Research Letters
Nanoscale Research Letters 工程技术-材料科学:综合
CiteScore
11.30
自引率
0.00%
发文量
110
审稿时长
48 days
期刊介绍: Nanoscale Research Letters (NRL) provides an interdisciplinary forum for communication of scientific and technological advances in the creation and use of objects at the nanometer scale. NRL is the first nanotechnology journal from a major publisher to be published with Open Access.
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