热近场:相干、光谱学、热传递和光力

IF 8.7 2区 工程技术 Q1 CHEMISTRY, PHYSICAL Progress in Surface Science Pub Date : 2013-12-01 DOI:10.1016/j.progsurf.2013.07.001
Andrew C. Jones, Brian T. O’Callahan, Honghua U. Yang, Markus B. Raschke
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引用次数: 71

摘要

在有限温度下,所有物质共有的最普遍的物理过程之一是热辐射的发射。远场黑体辐射的实验表征和理论描述是现代物理学发展的基石,基尔霍夫和普朗克做出了开创性的贡献。热辐射源于载流子的热驱动波动,反映了介质的谐振和非谐振介电性质,是远场热发射光谱的基础。然而,与潜在的波动光源偏振相关的是基本不同的光谱、空间、共振和相干性质的倏逝热近场。这些性质最近在热激发分子、表面等离子体激元(SPP)和表面声子激元(SPhP)共振系统中得到了理论预测和实验表征。从早期的历史发展,理论模型的出现,以及基于波动耗散理论和电磁局域态密度(EM-LDOS)的热近场描述开始,我们进行了回顾。我们讨论了倏逝热场的距离依赖、大小、光谱分布和相干性的光学和光谱表征。散射扫描近场显微镜被证明是研究这些基本热近场性质的一种使能技术。然后,我们讨论了热场在纳米尺度传热和光力中的作用,以及它们与范德华力、卡西米尔力和卡西米尔-波尔德力的关系。最后,我们展望了光学力的内在和外在共振操纵的可能性,光学天线和超材料对纳米尺度辐射传热的控制,以及热红外近场光谱(TINS)用于宽带化学纳米光谱成像的可能性,其中热驱动的振动光学偶极子提供了自己的本征光源。
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The thermal near-field: Coherence, spectroscopy, heat-transfer, and optical forces

One of the most universal physical processes shared by all matter at finite temperature is the emission of thermal radiation. The experimental characterization and theoretical description of far-field black-body radiation was a cornerstone in the development of modern physics with the groundbreaking contributions from Gustav Kirchhoff and Max Planck. With its origin in thermally driven fluctuations of the charge carriers, thermal radiation reflects the resonant and non-resonant dielectric properties of media, which is the basis for far-field thermal emission spectroscopy. However, associated with the underlying fluctuating optical source polarization are fundamentally distinct spectral, spatial, resonant, and coherence properties of the evanescent thermal near-field. These properties have been recently predicted theoretically and characterized experimentally for systems with thermally excited molecular, surface plasmon polariton (SPP), and surface phonon polariton (SPhP) resonances.

We review, starting with the early historical developments, the emergence of theoretical models, and the description of the thermal near-field based on the fluctuation–dissipation theory and in terms of the electromagnetic local density of states (EM-LDOS). We discuss the optical and spectroscopic characterization of distance dependence, magnitude, spectral distribution, and coherence of evanescent thermal fields. Scattering scanning near-field microscopy proved instrumental as an enabling technique for the investigations of several of these fundamental thermal near-field properties. We then discuss the role of thermal fields in nano-scale heat transfer and optical forces, and the correlation to the van der Waals, Casimir, and Casimir–Polder forces. We conclude with an outlook on the possibility of intrinsic and extrinsic resonant manipulation of optical forces, control of nano-scale radiative heat transfer with optical antennas and metamaterials, and the use of thermal infrared near-field spectroscopy (TINS) for broadband chemical nano-spectroscopic imaging, where the thermally driven vibrational optical dipoles provide their own intrinsic light source.

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来源期刊
Progress in Surface Science
Progress in Surface Science 工程技术-物理:凝聚态物理
CiteScore
11.30
自引率
0.00%
发文量
10
审稿时长
3 months
期刊介绍: Progress in Surface Science publishes progress reports and review articles by invited authors of international stature. The papers are aimed at surface scientists and cover various aspects of surface science. Papers in the new section Progress Highlights, are more concise and general at the same time, and are aimed at all scientists. Because of the transdisciplinary nature of surface science, topics are chosen for their timeliness from across the wide spectrum of scientific and engineering subjects. The journal strives to promote the exchange of ideas between surface scientists in the various areas. Authors are encouraged to write articles that are of relevance and interest to both established surface scientists and newcomers in the field.
期刊最新文献
Editorial Board Current perspective towards a general framework to describe and harness friction at the nanoscale Time-resolved photoemission electron microscopy of semiconductor interfaces Editorial Board Structural dynamics in atomic indium wires on silicon: From ultrafast probing to coherent vibrational control
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