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Silicon-based spectrally selective emitters with good high-temperature stability on stepped metasurfaces

机译:硅基光谱选择性发射器良好的高温稳定性加强metasurfaces

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摘要

Solar thermophotovoltaic (STPV) systems have attracted increasing attention due to their great prospects for breaking the Shockley-Queisser limit. As a critical component of high-performance STPV systems, fabrication of a spectrally selective emitter with good stability at high temperature is one of the main research challenges. In this study, we developed a hybrid silicon-based metasurface emitter with spectral selectivity and high temperature stability using a simple fabrication process by introducing a controlled silicon nitride (SiNx) layer on a silicon stepped nanopillar substrate coated with molybdenum (Mo). Owing to the cooperative effect of cavity mode resonance and the interference effect of the SiNx dielectric layer, our proposed silicon-based metasurface emitter achieves a broadband optical absorption of similar to 95% in the wavelength range of 220-2000 nm, while effectively suppressing the heat radiation to similar to 19% in the long wavelength range (>5 mu m). Moreover, polarization-independence and angle-insensitivity behaviors are demonstrated in the emitters. Additionally, due to the presence of a SiNx protection layer, this silicon-based metasurface emitter is experimentally proved to sustain its excellent spectral properties after ultra-high temperature treatments, including annealing at 1273 K under an Ar atmosphere for 6 h, even at 1073 K in air for 1 h, which makes it an alternative candidate for application in actual STPV systems.
机译:太阳能热光电(STPV)系统吸引了越来越多的关注,由于他们的伟大打破Shockley-Queisser前景极限。高性能STPV系统制造的光谱选择性发射极具有良好的稳定性在高温度的一个主要研究挑战。硅基与光谱metasurface发射器选择性和高温稳定使用一个简单的制造过程中通过引入氮化硅(SiNx)层控制加强nanopillar衬底硅涂层钼(Mo)。共振腔模式的干扰影响SiNx介电层,我们的提议硅基metasurface发射器实现类似于95%的宽带光学吸收220 - 2000 nm的波长范围有效地抑制热量辐射类似于在长波长范围(> 5 19%μm)。此外,polarization-independence和angle-insensitivity行为中演示了发射器。SiNx保护层,这硅metasurface发射器是实验证明维持其良好的光谱特性超高温度的治疗方法,包括退火在1273 K下6的基于“增大化现实”技术的氛围h,即使在1073 K在空气中1 h,这使得它应用程序的另一个候选人实际STPV系统。

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