材料科学
热发射率
共发射极
光电子学
极化子
激发
红外线的
表面等离子体激元
等离子体子
热光电伏打
辐射传输
极化(电化学)
光学
波长
激发态
热的
相(物质)
光谱学
发射光谱
热辐射
相变
焦耳加热
超材料
作者
Linshuang Long,Sydney Taylor,Liping Wang
出处
期刊:ACS Photonics
[American Chemical Society]
日期:2020-07-07
卷期号:7 (8): 2219-2227
被引量:110
标识
DOI:10.1021/acsphotonics.0c00760
摘要
Dynamic radiative cooling attracts fast-increasing interest due to its adaptability to changing environment and promises for more energy-savings than the static counterpart. Here we demonstrate enhanced infrared emission by thermally switching the excitation of magnetic polariton with microstructured vanadium dioxide (VO 2 ) metasurfaces fabricated via scalable and etch-free processes. Temperature-dependent infrared spectroscopy clearly shows that the spectral emittance of fabricated tunable metasurfaces at wavelengths from 2 to 6 μm is significantly enhanced when heated beyond its phase transition temperature, where the magnetic polariton is excited with metallic VO 2 . The tunable emittance spectra are also demonstrated to be insensitive to incidence and polarization angles such that the VO 2 metasurface can be treated as a diffuse infrared emitter. Numerical optical simulation and analytical inductance-capacitance model elucidate the suppression or excitation of magnetic polariton with insulating or metallic VO 2 upon phase transition. The effect of enhanced thermal emission with the tunable VO 2 metasurface is experimentally demonstrated with a thermal vacuum test. For the same heating power of 0.2 W, the steady-state temperature of the tunable VO 2 metasurface emitter after phase transition is found to be 20 °C lower than that of a reference V 2 O 5 emitter whose static spectral emittance is almost the same as that of the VO 2 metasurface before phase transition. The radiative thermal conductance for the tunable metasurface emitter is found to be 3.96 W/m 2 K with metallic VO 2 at higher temperatures and 0.68 W/m 2 K with insulating VO 2 at lower temperatures, clearly demonstrating almost 6-fold enhancement in radiative heat dissipation.
科研通智能强力驱动
Strongly Powered by AbleSci AI