热光电伏打
发射率
材料科学
共发射极
光电子学
超材料
量子隧道
热辐射
热的
等离子体子
平版印刷术
低发射率
红外线的
能量转换
光学
辐射传输
选择性表面
热能
表面等离子体子
物理
量子力学
气象学
热力学
作者
Zhu Wang,Ting S. Luk,Yixuan Tan,Dengxin Ji,Ming Zhou,Qiaoqiang Gan,Zongfu Yu
摘要
Infrared thermal emission from metals has important energy applications in thermophotovoltaics, radiative cooling, and lighting. Unfortunately, the emissivity of flat metal films is close to zero because the screening effect prevents metals' fluctuating currents from emitting to the far field. As a result, metal films are often used as reflecting mirrors instead of thermal emitters. Recently, nanostructured metals, such as metamaterials, have emerged as an interesting way to enhance and to spectrally control thermal emission based on plasmonic resonant effects. However, they require sophisticated lithography. Here, we proposed and experimentally demonstrated a completely different mechanism to achieve spectrally selective metallic emitters based on a tunneling effect. This effect allows a simple flat metal film to achieve a near-unity emissivity with controlled spectral selectivity for efficient heat-to-light energy conversion.
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