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用于高效太阳能驱动界面蒸汽产生的集成蒸发器

Integrated Evaporator for Efficient Solar-Driven Interfacial Steam Generation.

作者信息

Chen Jinxing, Li Bo, Hu Guoxiang, Aleisa Rashed, Lei Shan, Yang Fan, Liu Dilong, Lyu Fenglei, Wang Mozhen, Ge Xuewu, Qian Fang, Zhang Qiao, Yin Yadong

机构信息

Institute of Functional Nano & Soft Materials (FUNSOM), Jiangsu Key Laboratory for Carbon-Based Functional Materials & Devices, Soochow University, Suzhou, Jiangsu 215123, P. R. China.

Department of Chemistry, University of California, Riverside, California 92521, United States.

出版信息

Nano Lett. 2020 Aug 12;20(8):6051-6058. doi: 10.1021/acs.nanolett.0c01999. Epub 2020 Jul 22.

Abstract

Solar-driven interfacial steam generation is a promising technique for clean water production because it can minimize thermal loss by localizing solar-to-heat conversion at the air/liquid interface. Here we report an integrated solar evaporator by partially growing 2D polypyrrole microsheets within a melamine foam through chemical vapor polymerization. These microsheets can induce multiple light reflections within the foam, enable omnidirectional light absorption, provide abundant surfaces to promote heat transfer, and achieve spatially defined hydrophobicity to facilitate vapor escape. Meanwhile, the inherent hydrophilicity of the bottom part of the foam promotes spontaneous upward water transport and suppresses heat loss. The composite foam exhibits an excellent apparent evaporation rate of ∼2 kg/(m·h) and solar-to-vapor efficiency of ∼91%. The combined advantages of large surface area, high efficiency, low cost, all-weather application, excellent durability, and scalable manufacturing make our integrated design promising for fabricating large-scale solar steam generation systems that are suitable for practical clean water production.

摘要

太阳能驱动的界面蒸汽生成是一种很有前景的清洁水生产技术,因为它可以通过将太阳能到热能的转换定位在气/液界面来最大限度地减少热损失。在此,我们报告了一种集成太阳能蒸发器,通过化学气相聚合在三聚氰胺泡沫中部分生长二维聚吡咯微片来制备。这些微片可在泡沫内引发多次光反射,实现全方位光吸收,提供丰富的表面以促进热传递,并实现空间定义的疏水性以促进蒸汽逸出。同时,泡沫底部固有的亲水性促进水的自发向上传输并抑制热损失。该复合泡沫表现出优异的表观蒸发速率,约为2 kg/(m·h),太阳能到蒸汽的效率约为91%。大表面积、高效率、低成本、全天候应用、优异的耐久性和可扩展制造的综合优势,使我们的集成设计有望用于制造适用于实际清洁水生产的大规模太阳能蒸汽发生系统。

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