海水淡化
结垢
盐(化学)
材料科学
纳米技术
化学工程
蒸发
水处理
太阳能淡化
生物污染
聚合物
水运
结晶
盐水
光热治疗
化学
机械强度
海水
环境科学
盐水
吸附
盐溶液
过饱和度
地表水
饮用水净化
作者
Panpan Zhang,Hanxue Liang,Yawei Du,Haiyang Wang,Yuan Tian,Jingtao Bi,Lei Wang,Zhiyuan Guo,Jing Wang,Zhiyong Ji,Liangti Qu
出处
期刊:Nano-micro Letters
[Springer Science+Business Media]
日期:2025-12-08
卷期号:18 (1): 87-87
被引量:2
标识
DOI:10.1007/s40820-025-01937-4
摘要
Solar-driven interfacial desalination (SID) offers a sustainable route for freshwater production, yet its long-term performance is compromised by salt crystallization and microbial fouling under complex marine conditions. Zwitterionic polymers offer promising nonfouling capabilities, but current zwitterionic hydrogel-based solar evaporators (HSEs) suffer from inadequate hydration and salt vulnerability. Inspired by the natural marine environmental adaptive characteristics of saltwater fish, we report a superhydrated zwitterionic poly(trimethylamine N-oxide, PTMAO)/polyacrylamide (PAAm)/polypyrrole (PPy) hydrogel (PTAP) with dedicated water channels for efficient, durable, and nonfouling SID. The directly linked N⁺ and O⁻ groups in PTMAO establish a robust hydration shell that facilitates rapid water transport while resisting salt and microbial adhesion. Integrated PAAm and PPy networks enhance mechanical strength and photothermal conversion. PTAP achieves a high evaporation rate of 2.35 kg m-2 h-1 under 1 kW m-2 in 10 wt% NaCl solution, maintaining stable operation over 100 h without salt accumulation. Furthermore, PTAP effectively resists various foulants including proteins, bacterial, and algal adhesion. Molecular dynamics simulations reveal that the exceptional hydration capacity supports its nonfouling properties. This work advances the development of nonfouling HSEs for sustainable solar desalination in real-world marine environments.
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