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首页> 外文期刊>Physical review, B >Unconventional four-terminal thermoelectric transport due to inelastic transport: Cooling by transverse heat current, transverse thermoelectric effect, and Maxwell demon
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Unconventional four-terminal thermoelectric transport due to inelastic transport: Cooling by transverse heat current, transverse thermoelectric effect, and Maxwell demon

机译:非传统的四端热电传输引起的无弹性传输:通过横向热流,横向热电效应和麦克斯韦恶魔冷却

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摘要

We show that, in mesoscopic four-terminal thermoelectric devices with two electrodes (the source and the drain) and two heat baths, inelastic-scattering processes can lead to unconventional thermoelectric transport. The source (or the drain) can be cooled by passing a thermal current between the two heat baths, with no net heat exchange between the heat baths and the electrodes. This effect, termed "cooling by transverse heat current," is a mesoscopic heat drag effect. In addition, there is a transverse thermoelectric effect where electrical current and power can be generated by a transverse temperature bias (i.e., the temperature bias between the two heat baths). This transverse thermoelectric effect originates from inelastic-scattering processes and may have advantages for improved figures of merit and power factor due to spatial separation of charge and heat transport. We study the Onsager current-affinity relations, the linear-response transport properties, and the transverse thermoelectric figure of merit of the four-terminal thermoelectric devices for various system parameters. We find that the figures of merit are optimized in different parameter regions for the transverse and the (conventional) longitudinal thermoelectric effects, respectively. Meanwhile, the maximum figure of merit for the transverse thermoelectric effect is higher than the figure of merit for the conventional longitudinal thermoelectric effect. In addition, we investigate the efficiency and power of the cooling by the transverse heat current effect in both linear and nonlinear transport regimes. Finally, we demonstrate that, by exploiting the inelastic transport in the quantum-dot four-terminal systems, a type of Maxwell demon can be realized using nonequilibrium heat baths.
机译:我们发现,在具有两个电极(源极和漏极)和两个热浴的介观四端热电器件中,非弹性散射过程可以导致非常规热电输运。源极(或漏极)可以通过在两个热槽之间传递热流来冷却,热槽和电极之间没有净热交换。这种效应被称为“横向热流冷却”,是一种介观热阻力效应。此外,还存在横向热电效应,横向温度偏差(即两个热浴之间的温度偏差)可产生电流和功率。这种横向热电效应起源于非弹性散射过程,由于电荷和热传输的空间分离,可能有利于改善优值和功率因数。我们研究了不同系统参数下四端热电器件的Onsager电流亲和力关系、线性响应传输特性和横向热电优值。我们发现,横向和(常规)纵向热电效应的优值分别在不同的参数区域得到优化。同时,横向热电效应的最大优值高于传统纵向热电效应的优值。此外,我们还研究了在线性和非线性传输模式下,横向热流效应对冷却效率和功率的影响。最后,我们证明,通过利用量子点四端系统中的非弹性输运,可以利用非平衡热浴实现一种麦克斯韦恶魔。

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  • 来源
    《Physical review, B 》 |2021年第8期| 共12页
  • 作者单位

    Soochow Univ Sch Phys Sci &

    Technol Suzhou 215006 Peoples R China;

    Soochow Univ Sch Phys Sci &

    Technol Suzhou 215006 Peoples R China;

    Weizmann Inst Sci Dept Condensed Matter Phys IL-76100 Rehovot Israel;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 固体物理学 ;
  • 关键词

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