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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Rational design of Au-H2Ti2O5 nanowires on Ti foam for Solar-Driven Seawater Evaporation Enhancement
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Rational design of Au-H2Ti2O5 nanowires on Ti foam for Solar-Driven Seawater Evaporation Enhancement

机译:AU-H2TI2O5纳米线对太阳能驱动海水蒸发增强的纳米线的理性设计

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摘要

Solar-driven seawater evaporation for seawater desalination is the effective and sustainable solution to utilize solar energy. We designed a hybrid photothermal material composed of Au-H2Ti2O5 nanowires on Ti foam with outstanding photothermal conversion performance to meet the requirement of freshwater shortage. Herein, H2Ti2O5 nanowires were grown on the surface of Ti foam as the substrate and water transfer layer by the hydrothermal method, and then Au nanospheres were deposited on H2Ti2O5 nanowires with the assistance of UV light reduction. The results indicated that the Au-10 material prepared with Au nanosphere deposition of 10 cycles exhibited the excellent solar absorption and photothermal ability, the water evaporation rate and conversion efficiency achieved 4.6800 kg m(-2) h(-1) and 58.76% under 5 sun irradiation, which was 2.07 times that of the sample without Au deposition. More importantly, the Au-10 showed high stability in the seawater evaporation with nearly lossless photothermal efficiency. The described design strategy of Au-H2Ti2O5 photothermal materials is simple, effective and repeatable, which is suitable for the practical solar-evaporation application. (C) 2020 Elsevier B.V. All rights reserved.
机译:太阳能海水蒸发海水淡化是利用太阳能的有效和可持续的解决方案。我们设计了一种由Au-H2Ti2O5纳米线和Ti泡沫组成的混合光热材料,该材料具有优异的光热转换性能,以满足淡水短缺的需要。本文采用水热法在泡沫钛表面生长H2Ti2O5纳米线作为基底和水转移层,然后在紫外光还原的辅助下在H2Ti2O5纳米线上沉积金纳米球。结果表明,经10次循环金纳米球沉积制备的Au-10材料具有良好的太阳吸收和光热性能,在5次太阳照射下,水蒸发率和转化效率分别达到4.6800 kg m(-2)h(-1)和58.76%,是未经金沉积样品的2.07倍。更重要的是,Au-10在海水蒸发中表现出高度的稳定性,具有几乎无损的光热效率。所述Au-H2Ti2O5光热材料的设计策略简单、有效且可重复,适用于实际的太阳能蒸发应用。(C) 2020爱思唯尔B.V.版权所有。

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