海水淡化
材料科学
太阳能
蒸发
热能储存
太阳能淡化
可再生能源
海水
蒸发器
化学工程
纳米技术
环境科学
工艺工程
热交换器
机械工程
气象学
化学
热力学
电气工程
工程类
物理
生物化学
海洋学
膜
地质学
作者
Wei Zhou,Naila Arshad,Hui Chen,Muhammad Sultan Irshad,Naveed Mushtaq,Shahid Hussain,M.Raza Shah,Syed Zohaib Hassan Naqvi,Muhammad Rizwan,Naeem Shahzad,Hong-Rong Li,Yuzheng Lu,Xianbao Wang
出处
期刊:Nanomaterials
[Multidisciplinary Digital Publishing Institute]
日期:2022-09-15
卷期号:12 (18): 3206-3206
被引量:10
摘要
Water scarcity has emerged as an intense global threat to humanity and needs prompt attention from the scientific community. Solar-driven interfacial evaporation and seawater desalination are promising strategies to resolve the primitive water shortage issue using renewable resources. However, the fragile solar thermal devices, complex fabricating techniques, and high cost greatly hinder extensive solar energy utilization in remote locations. Herein, we report the facile fabrication of a cost-effective solar-driven interfacial evaporator and seawater desalination system composed of carbon cloth (CC)-wrapped polyurethane foam (CC@PU). The developed solar evaporator had outstanding photo-thermal conversion efficiency (90%) with a high evaporation rate (1.71 kg m-2 h-1). The interfacial layer of black CC induced multiple incident rays on the surface allowing the excellent solar absorption (92%) and intensifying heat localization (67.37 °C) under 1 kW m-2 with spatially defined hydrophilicity to facilitate the easy vapor escape and validate the efficacious evaporation structure using extensive solar energy exploitation for practical application. More importantly, the long-term evaporation experiments with minimum discrepancy under seawater conditions endowed excellent mass change (15.24 kg m-2 in consecutive 8 h under 1 kW m-2 solar irradiations) and promoted its operational sustainability for multi-media rejection and self-dissolving potential (3.5 g NaCl rejected from CC@PU surface in 210 min). Hence, the low-cost and facile fabrication of CC@PU-based interfacial evaporation structure showcases the potential for enhanced solar-driven interfacial heat accumulation for freshwater production with simultaneous salt rejection.
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