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Highly efficient selective metamaterial absorber for high-temperature solar thermal energy harvesting

机译:用于高温太阳能热能收集的高效选择性超材料吸收器

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In this work, a selective solar absorber made of nanostructured titanium gratings deposited on an ultrathin MgF2 spacer and a tungsten ground film is proposed and experimentally demonstrated. Normal absorptance of the fabricated solar absorber is characterized to be higher than 0.9 in the UV, visible and, near infrared (IR) regime, while the mid-IR emittance is around 0.2. The high broadband absorption in the solar spectrum is realized by the excitation of surface plasmon and magnetic polariton resonances, while the low mid-IR emittance is due to the highly reflective nature of the metallic components. Further directional and polarized reflectance measurements show wide-angle and polarization-insensitive high absorption within solar spectrum. Temperature-dependent spectroscopic characterization indicates that the optical properties barely change at elevated temperatures up to 350 degrees C. The solar-to-heat conversion efficiency with the fabricated metamaterial solar absorber is predicted to be 78% at 100 degrees C without optical concentration or 80% at 400 degrees C with 25 suns. The performance could be further improved with better fabrication processes and geometric optimization during metamaterial design. The strong spectral selectivity, favorable diffuse-like behavior, and good thermal stability make the metamaterial selective absorber promising for significantly enhancing solar thermal energy harvesting in various systems at mid to high temperatures. (C) 2015 Elsevier B.V. All rights reserved.
机译:在这项工作中,提出并通过实验证明了一种选择性的太阳能吸收器,该吸收器由沉积在超薄MgF2隔离层上的纳米结构钛光栅和钨底膜制成。所制造的太阳能吸收器的正常吸收率在紫外,可见光和近红外(IR)范围内的特征在于高于0.9,而中红外发射率约为0.2。太阳光谱中的高宽带吸收是通过激发表面等离激元和磁极化共振来实现的,而中红外辐射率较低是由于金属成分的高反射特性。进一步的方向性和偏振反射率测量表明,在太阳光谱内,广角和偏振不敏感的高吸收率。随温度变化的光谱特性表明,在高达350摄氏度的高温下,光学性能几乎没有变化。使用超材料制造的超吸收材料制成的太阳能吸收剂在100摄氏度(无光聚光或80摄氏度)下的太阳能转化效率预计为78% %在400摄氏度和25个阳光下。在超材料设计过程中,可以通过更好的制造工艺和几何优化来进一步提高性能。强大的光谱选择性,良好的类似扩散的行为以及良好的热稳定性,使得超材料选择性吸收器有望显着增强中高温下各种系统中太阳能热能的收集。 (C)2015 Elsevier B.V.保留所有权利。

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