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首页> 外文期刊>Proceedings of the IEEE >Fluctuation-Induced Phenomena in Nanoscale Systems: Harnessing the Power of Noise
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Fluctuation-Induced Phenomena in Nanoscale Systems: Harnessing the Power of Noise

机译:纳米系统中的波动诱发现象:利用噪声的力量

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摘要

The famous Johnson–Nyquist formula relating noise current to conductance has a microscopic generalization relating noise current density to microscopic conductivity, with corollary relations governing noise in the components of the electromagnetic fields. These relations, known collectively in physics as fluctuation–dissipation relations, form the basis of the modern understanding of fluctuation-induced phenomena, a field of burgeoning importance in experimental physics and nanotechnology. In this review, we survey recent progress in computational techniques for modeling fluctuation-induced phenomena, focusing on two cases of particular interest: near-field radiative heat transfer and Casimir forces. In each case we review the basic physics of the phenomenon, discuss semianalytical and numerical algorithms for theoretical analysis, and present recent predictions for novel phenomena in complex material and geometric configurations.
机译:著名的约翰逊·奈奎斯特公式将噪声电流与电导联系起来,在微观上将噪声电流密度与微观电导率联系在一起,推论关系决定着电磁场中的噪声。这些关系在物理学中统称为涨落-耗散关系,构成了现代理解涨落现象的基础,而涨落现象在实验物理学和纳米技术中正迅速发展。在这篇综述中,我们调查了对波动引起的现象进行建模的计算技术的最新进展,重点关注了两个特别引起关注的情况:近场辐射热传递和卡西米尔力。在每种情况下,我们都会审查现象的基本物理原理,讨论用于理论分析的半分析和数值算法,并提供对复杂材料和几何构型中新现象的最新预测。

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