海水淡化
工艺工程
高效能源利用
过程集成
持续性
太阳能
模块化设计
光热治疗
重新使用
灵活性(工程)
纳米技术
材料科学
过程(计算)
碳中和
太阳能淡化
商业化
缺水
能源消耗
系统工程
光伏
计算机科学
水处理
储能
系统集成
可持续发展
模块化(生物学)
能量转换
碳纤维
电
稀缺
传质
作者
Zuoliang Wang,Xin Feng,Yuanjing Li,Nailiang Yang,Yanfen Wan,Peng Yang
标识
DOI:10.1002/adma.202510796
摘要
In response to the dual challenges posed by global water scarcity and carbon neutrality targets, conventional desalination technologies struggle to satisfy the requirements of high energy consumption and inherent limitations associated with centralized water supply systems. Within this context, interfacial solar steam evaporation (ISSE) technology has emerged as a promising solution to mitigate the uneven spatial and temporal distribution of water resources, owing to its advantages of highly efficient photothermal conversion, zero carbon emissions, and modular design. Although ISSE has been developed for tens of years, there are still many challenges to be faced, from fundamental research to practical applications. It is noticed that the energy conversion and mass transport are the core issues in multi-scale levels of ISSE, no matter of the material design or the system assembly, and the optimization of them is beneficial for the whole process of ISSE. Herein, the research progress is tried to understand and summarize from the material chosen, structural architecture, and system integration with the view of energy and mass transfer. Furthermore, the successful integration of thermoelectric conversion, simultaneous water-hydrogen cogeneration, and metal salt recovery has concurrently enhanced the efficiency of energy utilization. Furthermore, a collaborative operation framework integrating discrete water networks and ISSE technology has been predicted. Through AI empowerment and modularized design, it eventually forms a smart water cycle system with the trinity of "water collection-purification-cogeneration." At the end of this review, the thoughts on the development of ISSE are also provided.
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