材料科学
光电子学
红外线的
辐射传输
激光器
发射率
散射
平面的
热的
光学
物理
计算机图形学(图像)
气象学
计算机科学
作者
Ziquan Xu,Hao Luo,Huanzheng Zhu,Yú Hónɡ,Weidong Shen,Jianping Ding,Sandeep Kaur,Pintu Ghosh,Min Qiu,Qiang Li
出处
期刊:Nano Letters
[American Chemical Society]
日期:2021-06-02
卷期号:21 (12): 5269-5276
被引量:173
标识
DOI:10.1021/acs.nanolett.1c01396
摘要
Control of thermal emission underpins fundamental science, as it is related to both heat and infrared electromagnetic wave transport. However, realizing nonvolatile reconfigurable thermal emission is challenging due to the inherent complexity or limitation in conventional radiative materials or structures. Here, we experimentally demonstrate a nonvolatile optically reconfigurable mid-infrared coding radiative metasurface. By applying laser pulses, infrared emissive patterns are directly encoded into an ultrathin (∼25 nm) Ge2Sb2Te5 layer integrated into a planar optical cavity with the optically crystallized Ge2Sb2Te5 spots, and the peak spectral emissivity is repeatedly switched between low (∼0.1) and high (∼0.7) values. In addition, the visible scattering patterns are independently modulated with submicron-sized bumps generated by high-power laser pulses. An anticounterfeiting label is demonstrated with spatially different infrared emission and visible light scattering information encoded. This approach constitutes a new route toward thermal emission control and has broad applications in encryption, camouflage, and so on.
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