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时间调制系统中热扩散的互易性

Reciprocity of thermal diffusion in time-modulated systems.

作者信息

Li Jiaxin, Li Ying, Cao Pei-Chao, Qi Minghong, Zheng Xu, Peng Yu-Gui, Li Baowen, Zhu Xue-Feng, Alù Andrea, Chen Hongsheng, Qiu Cheng-Wei

机构信息

Department of Electrical and Computer Engineering, National University of Singapore, Singapore, 117583, Singapore.

School of Mechatronics Engineering, Harbin Institute of Technology, 150001, Harbin, China.

出版信息

Nat Commun. 2022 Jan 10;13(1):167. doi: 10.1038/s41467-021-27903-3.

Abstract

The reciprocity principle governs the symmetry in transmission of electromagnetic and acoustic waves, as well as the diffusion of heat between two points in space, with important consequences for thermal management and energy harvesting. There has been significant recent interest in materials with time-modulated properties, which have been shown to efficiently break reciprocity for light, sound, and even charge diffusion. However, time modulation may not be a plausible approach to break thermal reciprocity, in contrast to the usual perception. We establish a theoretical framework to accurately describe the behavior of diffusive processes under time modulation, and prove that thermal reciprocity in dynamic materials is generally preserved by the continuity equation, unless some external bias or special material is considered. We then experimentally demonstrate reciprocal heat transfer in a time-modulated device. Our findings correct previous misconceptions regarding reciprocity breaking for thermal diffusion, revealing the generality of symmetry constraints in heat transfer, and clarifying its differences from other transport processes in what concerns the principles of reciprocity and microscopic reversibility.

摘要

互易原理支配着电磁波和声波传播中的对称性,以及空间中两点之间的热扩散,这对热管理和能量收集具有重要影响。最近,人们对具有时间调制特性的材料产生了浓厚兴趣,这些材料已被证明能有效地打破光、声甚至电荷扩散的互易性。然而,与通常的认知相反,时间调制可能不是打破热互易性的可行方法。我们建立了一个理论框架来准确描述时间调制下扩散过程的行为,并证明动态材料中的热互易性通常由连续性方程保持,除非考虑一些外部偏置或特殊材料。然后,我们通过实验证明了在时间调制装置中的互易热传递。我们的发现纠正了先前关于热扩散互易性破坏的误解,揭示了热传递中对称约束的普遍性,并阐明了其与其他传输过程在互易性和微观可逆性原理方面的差异。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/af75/8748696/398f9a0e2f35/41467_2021_27903_Fig1_HTML.jpg

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