VALIDITY OF KINETIC THEORY FOR RADIATIVE HEAT TRANSFER IN NANOPARTICLE CHAINS

Eric J. Tervo, B. Cola, Zhuomin M. Zhang
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引用次数: 2

Abstract

In chains of closely-spaced nanoparticles supporting surface polaritons, near-field electromagnetic coupling leads to collective effects and super-Planckian thermal radiation exchange. Researchers have primarily used two analytical approaches to calculate radiative heat transfer in these systems: fluctuational electrodynamics, which directly incorporates fluctuating thermal currents into Maxwell's equations, and a kinetic approach where the dispersion relation provides modes and propagation lengths for the Boltzmann transport equation. Here, we compare results from the two approaches in order to identify regimes in which kinetic theory is valid and to explain differing results in the literature on its validity. Using both methods, we calculate the diffusive radiative thermal conductivity of nanoparticle chains. We show that kinetic theory is valid and matches predictions by fluctuational electrodynamics when the propagation lengths are greater than the particle spacing.
纳米颗粒链辐射传热动力学理论的有效性
在支持表面极化子的紧密间隔纳米颗粒链中,近场电磁耦合导致集体效应和超普朗克热辐射交换。研究人员主要使用两种分析方法来计算这些系统中的辐射传热:波动电动力学,直接将波动热电流纳入麦克斯韦方程;以及动力学方法,其中色散关系为玻尔兹曼输运方程提供模式和传播长度。在这里,我们比较了两种方法的结果,以确定动力学理论有效的制度,并解释其有效性文献中的不同结果。利用这两种方法,我们计算了纳米颗粒链的扩散辐射导热系数。我们证明,当传播长度大于粒子间距时,动力学理论是有效的,并且与波动电动力学预测相匹配。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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