论文标题

通过分层超材料启用的集成和光谱选择性热发射器

Integrated and Spectrally Selective Thermal Emitters Enabled by Layered Metamaterials

论文作者

Gong, Yongkang, Li, Kang, Copner, Nigel, Liu, Heng, Zhao, Meng, Zhang, Bo, Pusch, Andreas, Huffaker, Diana L., Oh, Sang Soon

论文摘要

在次波长度尺度上,轻度互动的纳米光学工程允许热辐射与传统热发射器的热辐射有根本不同的辐射,并为各种热光子应用提供了令人兴奋的机会。我们提出了一种新型的集成和电控制的热发射极,该发射极可利用无光刻和介电/金属纳米层来利用分层的超材料。我们在理论上和实验上都证明了所提出的概念可以在可见的状态下创建强大的光子带隙,并在红外波长处允许在红外波长处产生小小的阻抗不匹配,从而在1.4-14 UM以及有效地抑制可见区域的宽阔的红外波长上显着增强发射率的光学特征。电动驱动的超材料设备在温度高达〜800 K时具有光学稳定,电流转换效率达到约30%。我们认为,拟议的高效率热发射器将为各种热光子应用的集成红外光源平台铺平道路,尤其是为具有成本效益,紧凑,低眩光和能效的红外加热提供了一种新颖的替代方案。

Nanophotonic engineering of light-matter interaction at subwavelength scale allows thermal radiation that is fundamentally different from that of traditional thermal emitters and provides exciting opportunities for various thermal-photonic applications. We propose a new kind of integrated and electrically controlled thermal emitter that exploits layered metamaterials with lithography-free and dielectric/metallic nanolayers. We demonstrate both theoretically and experimentally that the proposed concept can create a strong photonic bandgap in the visible regime and allow small impedance mismatch at the infrared wavelengths, which gives rise to optical features of significantly enhanced emissivity at the broad infrared wavelengths of 1.4-14 um as well as effectively suppressed emissivity in the visible region. The electrically driven metamaterial devices are optically and thermally stable at temperature up to ~800 K with electro-optical conversion efficiency reaching ~30%. We believe that the proposed high efficiency thermal emitters will pave the way towards integrated infrared light source platforms for various thermal-photonic applications and particularly provide a novel alternative for cost-effective, compact, low glare, and energy-efficient infrared heating.

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