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10.1038/srep13600

http://scihub22266oqcxt.onion/10.1038/srep13600
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C4559801!4559801!26337561
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suck abstract from ncbi


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pmid26337561      Sci+Rep 2015 ; 5 (ä): ä
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  • The impact of surface chemistry on the performance of localized solar-driven evaporation system #MMPMID26337561
  • Yu S; Zhang Y; Duan H; Liu Y; Quan X; Tao P; Shang W; Wu J; Song C; Deng T
  • Sci Rep 2015[]; 5 (ä): ä PMID26337561show ga
  • This report investigates the influence of surface chemistry (or wettability) on the evaporation performance of free-standing double-layered thin film on the surface of water. Such newly developed evaporation system is composed of top plasmonic light-to-heat conversion layer and bottom porous supporting layer. Under solar light illumination, the induced plasmonic heat will be localized within the film. By modulating the wettability of such evaporation system through the control of surface chemistry, the evaporation rates are differentiated between hydrophilized and hydrophobized anodic aluminum oxide membrane-based double layered thin films. Additionally, this work demonstrated that the evaporation rate mainly depends on the wettability of bottom supporting layer rather than that of top light-to-heat conversion layer. The findings in this study not only elucidate the role of surface chemistry of each layer of such double-layered evaporation system, but also provide additional design guidelines for such localized evaporation system in applications including desalination, distillation and power generation.
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