Photonics Research, Volume. 12, Issue 2, 292(2024)
Electrically tunable phase-change metasurface for dynamic infrared thermal camouflage
Fig. 1. (a) Schematic of an infrared thermal camouflage scenario. (b) Perspective view and (c) cross-sectional view of electrically controlled dynamic infrared thermal camouflage structures based on GST. The metasurface consists of an Au pillar array, a GST layer, a Pt layer, a
Fig. 2. Simulated emissivity spectra of the MIM thermal emitters at different crystallization fractions of GST. The higher the crystallization fraction of GST, the larger the permittivity and refractive index of GST, resulting in a redshift of plasmonic resonant peaks.
Fig. 3. Magnetic field intensity components
Fig. 4. GCA simulations of the quench-rate-dependent amorphization in GST. (a) Evolution of the temperature and the
Fig. 5. Simulated temperature characteristics of the GST-based thermal emitter. (a) Temperature variation curves of GST at different locations with pulse durations of 100 ns and 400 ns. (b) Maximum temperature map at GST top surface under excitation pulses with different pulse durations and voltages. The white line represents the isothermal line at 640°C. (c) Temperature distributions along
Fig. 6. Radiant intensity of the GST-based emitter at different temperatures and crystallization fractions and dynamic thermal camouflage performance under (a) vegetation and (b) iron background. The background temperature map of (c) vegetation and (d) iron where thermal camouflage can be obtained for the emitter with different actual temperatures and crystallization fractions.
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Yufeng Xiong, Yunzheng Wang, Chao Feng, Yaolan Tian, Liang Gao, Jun-Lei Wang, Zhuang Zhuo, Xian Zhao, "Electrically tunable phase-change metasurface for dynamic infrared thermal camouflage," Photonics Res. 12, 292 (2024)
Category: Optical and Photonic Materials
Received: Sep. 4, 2023
Accepted: Dec. 3, 2023
Published Online: Feb. 2, 2024
The Author Email: Yunzheng Wang (yunzheng_wang@sdu.edu.cn), Jun-Lei Wang (junlei.wang@sdu.edu.cn)