材料科学
海水淡化
卤水
蒸发器
杰纳斯
蒸发
化学工程
太阳能淡化
盐(化学)
传质
离子
纳米技术
机械工程
膜
化学
热力学
有机化学
生物化学
物理
热交换器
工程类
色谱法
作者
Nan He,Yongfang Yang,Haonan Wang,Fan Li,Bo Jiang,Dawei Tang,Lin Li
标识
DOI:10.1002/adma.202300189
摘要
Abstract Emerging solar interfacial evaporation offers the most promising response to the severe freshwater crisis. However, the most challenging bottleneck is the conflict between resisting salt accumulation and maintaining high evaporation performance since conventional salt‐resistant evaporators enhance water flow to remove salt, leading to tremendous heat loss. Herein, an ion‐transfer engineering is proposed via a Janus ion‐selective hydrogel that enables ion‐electromigration salt removal, breaking the historical dependence on water convection, and significantly lowering the heat loss. The hydrogels drive cations downward and anions upward, away from the evaporation surfaces. An electrical potential is thus established inside the evaporator and salt in 15 wt% brine is removed stably for seven days. A record‐high evaporation rate of 6.86 kg m −2 h −1 in 15 wt% brine, 2.5 times the previously reported works, is achieved. With the from‐scratch salt‐resistant route, comprehensive water‐thermal analysis, and record‐high performance, this work holds great potential for the future salt‐resistant evaporators.
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