Sustainable Seawater Desalination and Energy Management: Mechanisms, Strategies, and the Way Forward

Author:

Wang Meng1,Wei Yen2,Li Ruoxin2,Wang Xin3,Wang Chengyu3,Ren Nanqi1,Ho Shih-Hsin1

Affiliation:

1. State Key Laboratory of Urban Water Resource and Environment, School of Environment, Harbin Institute of Technology, Harbin 150001, China.

2. Department of Chemistry, Tsinghua University, Beijing 100084, China.

3. Key Laboratory of Bio-based Material Science & Technology (Northeast Forestry University), Ministry of Education, Harbin 150040, China.

Abstract

Solar-driven desalination systems have been recognized as an effective technology to address the water crisis. Recently, evaporators prepared based on advanced manufacturing technologies have emerged as a promising tool in enhancing ocean energy utilization. In this review, we discussed the thermal conversion, energy flow, salt deposition mechanisms, and design strategies for solar-driven desalination systems, and explored how to improve the desalination performance and energy use efficiency of the systems through advanced manufacturing technologies. In future perspectives, we determined the feasibility of coupling solar-driven solar desalination systems with multi-stage energy utilization systems and emerging artificial intelligence technologies, for which conclusions are given and new directions for future desalination system development are envisioned. Finally, exciting opportunities and challenges in the face of basic research and practical implementation are discussed, providing promising solutions and blueprints for green and novel desalination technologies while achieving sustainable development.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

Reference119 articles.

1. Four billion people facing severe water scarcity;Mekonnen MM;Sci Adv,2016

2. Multifaceted characteristics of dryland aridity changes in a warming world

3. Three-dimensional cobalt hydroxide hollow cube/vertical nanosheets with high desalination capacity and long-term performance stability;Xiong Y;Research,2021

4. Committed emissions from existing energy infrastructure jeopardize 1.5 °C climate target

5. 3D-printed, all-in-one evaporator for high-efficiency solar steam generation under 1 sun illumination;Li YJ;Adv Mater,2017

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