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Self-assembly of highly efficient, broadband plasmonic absorbers for solar steam generation

Science Advances · 2016 · Vol. 2(4) · pp. e1501227–e1501227
Lin ZhouYingling TanDengxin JiBin ZhuPei ZhangJun XuQiaoqiang GanZongfu YuJia Zhu

Abstract

The study of ideal absorbers, which can efficiently absorb light over a broad range of wavelengths, is of fundamental importance, as well as critical for many applications from solar steam generation and thermophotovoltaics to light/thermal detectors. As a result of recent advances in plasmonics, plasmonic absorbers have attracted a lot of attention. However, the performance and scalability of these absorbers, predominantly fabricated by the top-down approach, need to be further improved to enable widespread applications. We report a plasmonic absorber which can enable an average measured absorbance of ~99% across the wavelengths from 400 nm to 10 μm, the most efficient and broadband plasmonic absorber reported to date. The absorber is fabricated through self-assembly of metallic nanoparticles onto a nanoporous template by a one-step deposition process. Because of its efficient light absorption, strong field enhancement, and porous structures, which together enable not only efficient solar absorption but also significant local heating and continuous stream flow, plasmonic absorber-based solar steam generation has over 90% efficiency under solar irradiation of only 4-sun intensity (4 kW m(-2)). The pronounced light absorption effect coupled with the high-throughput self-assembly process could lead toward large-scale manufacturing of other nanophotonic structures and devices.

Solar Thermal and Photovoltaic SystemsSolar-Powered Water Purification MethodsThermal Radiation and Cooling TechnologiesBroadbandPlasmonMaterials scienceOptoelectronicsComputer scienceTelecommunications

MeSH terms

Solar EnergySteamSunlightSurface Plasmon ResonanceNanotechnologyMetal Nanoparticles

Funding

  • National Natural Science Foundation of China
Citations
1,295
FWCI
37.82
field-weighted impact
References
56
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100%
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Citations per year
References
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ACS Nano · 2010 · 2,172 citations
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Nature Communications · 2014 · 2,191 citations
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Physical Review Letters · 2008 · 7,333 citations
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Nature Nanotechnology · 2015 · 3,357 citations
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