通过非互易双曲石墨烯等离子体的近场电磁传热

IF 2.7 3区 工程技术 Q2 ENGINEERING, MECHANICAL Nanoscale and Microscale Thermophysical Engineering Pub Date : 2020-10-01 DOI:10.1080/15567265.2020.1845884
Cheng-Long Zhou, Shui-Hua Yang, Yong Zhang, H. Yi
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引用次数: 17

摘要

摘要:本文从理论上证明了一种新的能量传输模式——非互易双曲表面等离子激元(NHSPPs)可以调制和增强近场辐射传热(NFRHT)。众所周知,通过将单层石墨烯片图像化成带状,石墨烯等离子体的封闭圆形色散被打开,变成双曲色散。当漂移电流施加到石墨烯带上时,这种双曲模型将演变成极不对称的形状,这在纳米尺度的非接触式热交换中从未被注意到。结合对色散分布的分析,发现随着漂移速度的增加,双曲模表现出更显著的不对称特性。在较大的间隙尺寸下,NHSPPs对NFRHT的增强作用会减弱。同时研究了光栅与漂移电流的耦合效应。通过改变化学势和石墨烯填充因子,可以调节模式的位置和强度,从而相应地调整NFRHT。最后,我们发现由于系统的非互易双曲拓扑结构,在大扭转角下,与零电流情况相比,具有大漂移电流速度的系统更适合调制NFRHT。总之,这些发现可能为高效热管理、能量收集和亚波长热成像开辟了一条有希望的途径。
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Near-field electromagnetic heat transfer through nonreciprocal hyperbolic graphene plasmons
ABSTRACT In the present work, we theoretically demonstrate that near-field radiative heat transfer (NFRHT) can be modulated and enhanced by a new energy transmission mode of evanescent wave, i.e. the nonreciprocal hyperbolic surface plasmon polaritons (NHSPPs). It is well known that by patterning a single layer of graphene sheet into ribbons, the closed circular dispersion of graphene plasmons is opened to become hyperbolic one. When a drift current is applied to a graphene ribbon, this hyperbolic model would evolve into the extremely asymmetric shape, which has never been noted in the noncontact heat exchanges at nanoscale before. Combining the analysis of dispersion distribution, we find that as the drift velocity increases, the hyperbolic mode exhibits more significant asymmetric characteristics. It is also found that under a larger gap size, the enhanced effect of NHSPPs on NFRHT can be weakened. In addition, the coupling effect of grating and drift current is investigated simultaneously. By changing the chemical potential and graphene filling factor, the positions and intensities of the modes can be modulated, and hence the NFRHT can be tuned accordingly. Finally, we have found that thanks to the nonreciprocal hyperbolic topology of the system, at a large twisted angle, the system with a large drift current velocity is more preferable to modulate the NFRHT compared with the zero-current case. In summary, the findings may open a promising pathway for highly efficient thermal management, energy harvesting, and subwavelength thermal imaging.
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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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