Lin Keng-Te, Lin Han, Yang Tieshan, Jia Baohua
Centre for Translational Atomaterials, Faculty of Science, Engineering and Technology, Swinburne University of Technology, P.O. Box 218, Hawthorn, VIC, 3122, Australia.
The Australian Research Council (ARC) Industrial Transformation Training Centre in Surface Engineering for Advanced Materials (SEAM), PO Box 218, Hawthorn, VIC, 3122, Australia.
Nat Commun. 2020 Mar 13;11(1):1389. doi: 10.1038/s41467-020-15116-z.
An ideal solar-thermal absorber requires efficient selective absorption with a tunable bandwidth, excellent thermal conductivity and stability, and a simple structure for effective solar thermal energy conversion. Despite various solar absorbers having been demonstrated, these conditions are challenging to achieve simultaneously using conventional materials and structures. Here, we propose and demonstrate three-dimensional structured graphene metamaterial (SGM) that takes advantages of wavelength selectivity from metallic trench-like structures and broadband dispersionless nature and excellent thermal conductivity from the ultrathin graphene metamaterial film. The SGM absorbers exhibit superior solar selective and omnidirectional absorption, flexible tunability of wavelength selective absorption, excellent photothermal performance, and high thermal stability. Impressive solar-to-thermal conversion efficiency of 90.1% and solar-to-vapor efficiency of 96.2% have been achieved. These superior properties of the SGM absorber suggest it has a great potential for practical applications of solar thermal energy harvesting and manipulation.
理想的太阳能热吸收器需要具备高效的选择性吸收、可调节的带宽、出色的热导率和稳定性,以及用于有效太阳能热转换的简单结构。尽管已经展示了各种太阳能吸收器,但使用传统材料和结构同时实现这些条件具有挑战性。在此,我们提出并展示了三维结构化石墨烯超材料(SGM),它利用了金属沟槽状结构的波长选择性、宽带无色散特性以及超薄石墨烯超材料薄膜的出色热导率。SGM吸收器表现出卓越的太阳能选择性和全向吸收、波长选择性吸收的灵活可调性、出色的光热性能和高热稳定性。已实现了令人印象深刻的90.1%的太阳能-热能转换效率和96.2%的太阳能-蒸汽效率。SGM吸收器的这些优异特性表明它在太阳能热收集和操纵的实际应用中具有巨大潜力。