Entezari Akram, Esan Oladapo Christopher, Yan Xiaohui, Wang Ruzhu, An Liang
Department of Mechanical Engineering, The Hong Kong Polytechnic University, Hung Hom, Kowloon, Hong Kong SAR, China.
School of Mechanical Engineering, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai, 200240, China.
Adv Mater. 2023 Oct;35(40):e2210957. doi: 10.1002/adma.202210957. Epub 2023 Jul 30.
Freshwater scarcity is a global challenge posing threats to the lives and daily activities of humankind such that two-thirds of the global population currently experience water shortages. Atmospheric water, irrespective of geographical location, is considered as an alternative water source. Sorption-based atmospheric water harvesting (SAWH) has recently emerged as an efficient strategy for decentralized water production. SAWH thus opens up a self-sustaining source of freshwater that can potentially support the global population for various applications. In this review, the state-of-the-art of SAWH, considering its operation principle, thermodynamic analysis, energy assessment, materials, components, different designs, productivity improvement, scale-up, and application for drinking water, is first extensively explored. Thereafter, the practical integration and potential application of SAWH, beyond drinking water, for wide range of utilities in agriculture, fuel/electricity production, thermal management in building services, electronic devices, and textile are comprehensively discussed. The various strategies to reduce human reliance on natural water resources by integrating SAWH into existing technologies, particularly in underdeveloped countries, in order to satisfy the interconnected needs for food, energy, and water are also examined. This study further highlights the urgent need and future research directions to intensify the design and development of hybrid-SAWH systems for sustainability and diverse applications.
淡水短缺是一项全球性挑战,对人类的生命和日常活动构成威胁,目前全球三分之二的人口面临水资源短缺问题。无论地理位置如何,大气水都被视为一种替代水源。基于吸附的大气取水(SAWH)最近已成为一种分散式水生产的有效策略。因此,SAWH开辟了一种自我维持的淡水源,有可能为全球人口的各种应用提供支持。在这篇综述中,首先广泛探讨了SAWH的最新技术,包括其运行原理、热力学分析、能量评估、材料、组件、不同设计、生产率提高、扩大规模以及饮用水应用。此后,全面讨论了SAWH在饮用水之外,在农业、燃料/电力生产、建筑服务中的热管理、电子设备和纺织品等广泛用途中的实际整合和潜在应用。还研究了通过将SAWH集成到现有技术中,特别是在欠发达国家,以满足对食物、能源和水的相互关联需求,从而减少人类对自然资源依赖的各种策略。本研究进一步强调了迫切需要以及未来的研究方向,以加强混合SAWH系统的设计和开发,实现可持续性和多样化应用。