Plasma-Made Graphene Nanostructures with Molecularly Dispersed F and Na Sites for Solar Desalination of Oil-Contaminated Seawater with Complete In-Water and In-Air Oil Rejection

材料科学 海水 石墨烯 海水淡化 污染 海水淡化 石油泄漏 纳米技术 化学工程 太阳能淡化 环境工程 环境科学 海洋学 遗传学 生物 生态学 地质学 工程类
作者
Shenghao Wu,Biyao Gong,Huachao Yang,Yikuan Tian,Chenxuan Xu,Xinzheng Guo,Guoping Xiong,Tengfei Luo,Jianhua Yan,Kefa Cen,Zheng Bo,Kostya Ostrikov,Timothy S. Fisher
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:12 (34): 38512-38521 被引量:36
标识
DOI:10.1021/acsami.0c07921
摘要

Solar desalination that exploits interfacial evaporation represents a promising solution to global water scarcity. Real-world feedstocks (e.g., natural seawater and contaminated water) include oil contamination issues, raising a compelling need for desalination systems that offer anti-oil-fouling capability; however, it is still challenging to prepare oil-repellent and meanwhile water-attracting surfaces. This work demonstrates a concept of molecularly dispersing functional F and Na sites on plasma-made vertically oriented graphene nanosheets to achieve an in-air and in-water oleophobic, hydrophilic surface. The graphene architecture presents high in-air (138°) and in-water (145°) oil contact angles, with simultaneously high water affinity (0°). Such surface wettability is enabled by oleophobic, hydrophobic −CFx, and hydrophilic −COONa groups of the molecules that disperse on graphene surfaces; low-dispersion (0.439 mJ m–2) and high-polarity (95.199 mJ m–2) components of the solid surface tension; and increased surface roughness produced by graphene edges. The graphene nanostructures pump water upward by capillary action but repel oil from the surface, leading to complete in-water and in-air oil rejection and universal anti-oil-fouling capability for solar desalination. Consequently, stable solar–vapor energy efficiency of more than 85% is achieved regardless of whether the feedstock is pure or oil-contaminated water (e.g., a mixture of oil floating on water, an oil-in-water emulsion), resulting in the efficient production of clean water over several days. This outstanding performance is attributed to the universal (both in-water and in-air) oleophobic wettability, together with high light absorptance contributed by nanotraps, fast interfacial heat transfer enhanced by finlike nanostructures, and accelerated evaporation enabled by sharp graphene edges.
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