Impact of Electron-Phonon Interaction on Thermal Transport: A Review

IF 2.7 3区 工程技术 Q2 ENGINEERING, MECHANICAL Nanoscale and Microscale Thermophysical Engineering Pub Date : 2021-02-03 DOI:10.1080/15567265.2021.1902441
Y. Quan, Shengying Yue, Bolin Liao
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引用次数: 15

Abstract

ABSTRACT A thorough understanding of the microscopic picture of heat conduction in solids is critical to a broad range of applications, from thermal management of microelectronics to more efficient thermoelectric materials. The transport properties of phonons, the major microscopic heat carriers in semiconductors and insulators, particularly their scattering mechanisms, have been a central theme in microscale heat conduction research. In the past two decades, significant advancements have been made in computational and experimental efforts to probe phonon-phonon, phonon-impurity, and phonon-boundary scattering channels in detail. In contrast, electron-phonon scatterings were long thought to have negligible effects on thermal transport in most materials under ambient conditions. This article reviews the recent progress in first-principles computations and experimental methods that show clear evidence for a strong impact of electron-phonon interaction on phonon transport in a wide variety of technologically relevant solid-state materials. Under thermal equilibrium conditions, electron-phonon interactions can modify the total phonon scattering rates and renormalize the phonon frequency, as determined by the imaginary part and the real part of the phonon self-energy, respectively. Under nonequilibrium transport conditions, electron-phonon interactions can affect the coupled transport of electrons and phonons in the bulk through the “phonon/electron drag” mechanism as well as the interfacial thermal transport. Based on these recent results, we evaluate the potential use of electron-phonon interactions to control thermal transport in solids. We also provide an outlook on future directions of computational and experimental developments.
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电子-声子相互作用对热输运的影响:综述
摘要从微电子的热管理到更高效的热电材料,深入了解固体中热传导的微观图像对于广泛的应用至关重要。声子是半导体和绝缘体中的主要微观热载体,其传输特性,特别是其散射机制,一直是微观热传导研究的中心主题。在过去的二十年里,在详细探测声子-声子、声子杂质和声子边界散射通道的计算和实验方面取得了重大进展。相反,在环境条件下,电子-声子散射长期以来被认为对大多数材料的热输运影响可以忽略不计。本文综述了第一性原理计算和实验方法的最新进展,这些进展表明,在各种技术相关的固态材料中,电子-声子相互作用对声子输运产生了强烈影响。在热平衡条件下,电子-声子相互作用可以改变总声子散射率,并重新规范化声子频率,这分别由声子自能的虚部和实部决定。在非平衡输运条件下,电子-声子相互作用可以通过“声子/电子拖动”机制以及界面热输运影响体中电子和声子的耦合输运。基于这些最新的结果,我们评估了电子-声子相互作用在控制固体热输运方面的潜在用途。我们还展望了计算和实验发展的未来方向。
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来源期刊
Nanoscale and Microscale Thermophysical Engineering
Nanoscale and Microscale Thermophysical Engineering 工程技术-材料科学:表征与测试
CiteScore
5.90
自引率
2.40%
发文量
12
审稿时长
3.3 months
期刊介绍: Nanoscale and Microscale Thermophysical Engineering is a journal covering the basic science and engineering of nanoscale and microscale energy and mass transport, conversion, and storage processes. In addition, the journal addresses the uses of these principles for device and system applications in the fields of energy, environment, information, medicine, and transportation. The journal publishes both original research articles and reviews of historical accounts, latest progresses, and future directions in this rapidly advancing field. Papers deal with such topics as: transport and interactions of electrons, phonons, photons, and spins in solids, interfacial energy transport and phase change processes, microscale and nanoscale fluid and mass transport and chemical reaction, molecular-level energy transport, storage, conversion, reaction, and phase transition, near field thermal radiation and plasmonic effects, ultrafast and high spatial resolution measurements, multi length and time scale modeling and computations, processing of nanostructured materials, including composites, micro and nanoscale manufacturing, energy conversion and storage devices and systems, thermal management devices and systems, microfluidic and nanofluidic devices and systems, molecular analysis devices and systems.
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