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Three-terminal vibron-coupled hybrid quantum dot thermoelectric refrigeration

机译:三端子波动耦合混合量子点热电制冷

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摘要

A three-terminal nanoscale refrigeration concept based on a vibron-coupled quantum dot hybrid system coupled to two contacts and a phonon bath is proposed and analyzed in detail. While investigating the non-trivial role of electron-phonon interactions, we show that, although they are well known to be detrimental from a general refrigeration perspective, they can be engineered to favorably improve the trade-off between the cooling power (CP) and the coefflcient-of-performance (COP). Furthermore, an additional improvement in the trade-off can be facilitated by applying a high thermal bias. However, the allowed maximum of the thermal bias being strongly limited by the electron-phonon coupling, in turn, determines the lowest achievable temperature of the cooled body. It is further demonstrated that such interactions drive a phonon flow between the dot and bath whose direction and magnitude depend on the temperature difference between the dot and bath. To justify its impact in optimizing the peak CP and COP, we show that a weak coupling with the bath is preferable when the phonons relax through it and a strong coupling is suitable in the opposite case when the phonons are extracted from the bath. Finally, in studying the effect of asymmetry in electronic couplings, we show that a stronger coupling is favorable with the contact whose temperature is closer to that of the bath. Combining these aspects, we believe that this study could offer important guidelines for a possible realization of molecular and quantum dot thermoelectric refrigerator.
机译:提出了一种基于耦合到两个触点和声子浴的Vibron耦合量子点混合系统的三端纳米级制冷概念,并详细地分析。在调查电子 - 声子相互作用的非琐碎作用时,我们表明,尽管它们是众所周知的普通制冷观点有害,但它们可以设计成有利地改善冷却功率(CP)之间的折衷和系数性能(COP)。此外,可以通过施加高热偏压来促进折衷的额外改进。然而,允许的热偏压的最大值由电子 - 声子耦合强烈限制,反过来决定了冷却体的最低可实现的温度。进一步证明,这种相互作用驱动了在点和浴之间的声子流,其方向和幅度取决于点和浴之间的温差。为了证明其在优化峰值CP和COP方面的影响,我们表明当声子通过它的放松并且在从浴中提取声子时,在相反的耦合时,优选与浴的弱耦合是优选的。最后,在研究电子联轴器中不对称的效果,我们表明,较强的耦合是有利的,该接触是温度更接近浴缸的触点。结合这些方面,我们认为本研究可以提供分子和量子点热电冰箱的可能实现的重要指导方针。

著录项

  • 来源
    《Journal of Applied Physics》 |2020年第23期|234303.1-234303.13|共13页
  • 作者单位

    Department of Electrical Engineering Indian Institute of Technology Bombay Powai Mumbai 400076 India;

    Department of Electrical Engineering Indian Institute of Technology Bombay Powai Mumbai 400076 India;

    Department of Electrical Engineering Indian Institute of Technology Bombay Powai Mumbai 400076 India;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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