Defect-mode and Fabry-Perot resonance induced multi-band nonreciprocal thermal radiation

IF 4.4 2区 工程技术 Q1 ENGINEERING, MULTIDISCIPLINARY
ZiHe Chen, ShiLv Yu, Cheng Yuan, XinYou Cui, Run Hu
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引用次数: 0

Abstract

According to Kirchhoff’s radiation law, the spectral-directional absorptivity (α) and spectral-directional emissivity (e) of an object are widely believed to be identical, which places a fundamental limit on photonic energy conversion and management. The introduction of Weyl semimetals and magneto-optical (MO) materials into photonic crystals makes it possible to violate Kirchhoff’s law, but most existing work only report the unequal absorptivity and emissivity spectra in a single band, which cannot meet the requirements of most practical applications. Here, we introduce a defect layer into the structure composed of one-dimensional (1D) magnetophotonic crystal and a metal layer, which realizes dual-band nonreciprocal thermal radiation under a 3-T magnetic field with an incident angle of 60°. The realization of dual-band nonreciprocal radiation is mainly due to the Fabry-Perot (FP) resonance occurring in the defect layer and the excitation of Tamm plasmon, which is proved by calculating the magnetic field distribution. In addition, the effects of incident angle and structural parameters on nonreciprocity are also studied. What is more, the number of nonreciprocal bands could be further increased by tuning the defect layer thickness. When the defect layer thickness increases to 18.2 µm, tri-band nonreciprocal thermal radiation is realized due to the enhanced number of defect modes in the photonic band gap and the FP resonance occurring in the defect layer. Finally, the effect of defect location on nonreciprocity is also discussed. The present work provides a new way for the design of multi-band or even broad-band nonreciprocal thermal emitters.

缺陷模式和法布里-珀罗共振诱导的多波段非互惠热辐射
根据基尔霍夫辐射定律,人们普遍认为物体的光谱方向吸收率(α)和光谱方向发射率(e)是相同的,这就从根本上限制了光子能量的转换和管理。在光子晶体中引入韦尔半金属和磁光(MO)材料使违反基尔霍夫定律成为可能,但现有的大多数研究只报告了单波段的不等吸收率和发射率光谱,无法满足大多数实际应用的要求。在这里,我们在由一维(1D)磁光晶体和金属层组成的结构中引入了缺陷层,从而在入射角为 60° 的 3-T 磁场下实现了双波段非互易热辐射。双波段非对等辐射的实现主要得益于缺陷层中发生的法布里-珀罗(FP)共振和塔姆等离子体的激发,这一点通过计算磁场分布得到了证明。此外,还研究了入射角和结构参数对非折射性的影响。此外,还可以通过调整缺陷层厚度来进一步增加非互易带的数量。当缺陷层厚度增加到 18.2 µm 时,由于光子带隙中缺陷模式数量的增加以及缺陷层中发生的 FP 共振,实现了三带非互惠热辐射。最后,还讨论了缺陷位置对非互惠性的影响。本研究为设计多波段甚至宽波段非互惠热辐射器提供了一条新途径。
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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来源期刊
Science China Technological Sciences
Science China Technological Sciences ENGINEERING, MULTIDISCIPLINARY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
8.40
自引率
10.90%
发文量
4380
审稿时长
3.3 months
期刊介绍: Science China Technological Sciences, an academic journal cosponsored by the Chinese Academy of Sciences and the National Natural Science Foundation of China, and published by Science China Press, is committed to publishing high-quality, original results in both basic and applied research. Science China Technological Sciences is published in both print and electronic forms. It is indexed by Science Citation Index. Categories of articles: Reviews summarize representative results and achievements in a particular topic or an area, comment on the current state of research, and advise on the research directions. The author’s own opinion and related discussion is requested. Research papers report on important original results in all areas of technological sciences. Brief reports present short reports in a timely manner of the latest important results.
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