Wang Tao, Tao Binbin, Zuo Bin, Yan Guoze, Liu Shaoqing, Wang Ruoyu, Zhao Zhongzhou, Chu Feifei, Li Zhengtong, Yamauchi Yusuke, Xu Xingtao
Marine Science and Technology College, Zhejiang Ocean University, Zhoushan, 316022, China.
College of Innovation and Industrial Engineering, Wanjiang University of Technology, Maanshan, 243011, China.
Small Methods. 2025 Mar;9(3):e2401598. doi: 10.1002/smtd.202401598. Epub 2024 Dec 11.
Uranium extraction from seawater (UES) is crucial for ensuring the sustainable development of nuclear power and has seen significant advancements in recent years. However, natural seawater is a highly complex biogeochemical system, characterized by an extremely low uranium (U) concentration (≈3.3 µg L), abundant competitive ions, and significant marine biological pollution, making UES a formidable challenge. This review addresses the challenges encountered in UES and explores potential methods for enhancing the industrial UES system, including membrane separation, electrochemistry, photocatalysis, and biosorption. Additionally, several representative marine tests are summarized and restrictive factors of large-scale UES are analyzed. Finally, the further development of UES from laboratory to industry applications is promoted, with a focus on technological innovation. The goal is to stimulate innovative ideas and provide fresh insights for the future development of the UES system, bridging the gap between laboratory research and industrial implementation.
从海水中提取铀(UES)对于确保核电的可持续发展至关重要,并且近年来取得了重大进展。然而,天然海水是一个高度复杂的生物地球化学系统,其特点是铀(U)浓度极低(约3.3微克/升)、存在大量竞争性离子以及严重的海洋生物污染,这使得从海水中提取铀成为一项艰巨的挑战。本综述阐述了在从海水中提取铀过程中遇到的挑战,并探索了增强工业规模从海水中提取铀系统的潜在方法,包括膜分离、电化学、光催化和生物吸附。此外,总结了几项具有代表性的海洋试验,并分析了大规模从海水中提取铀的限制因素。最后,推动从海水中提取铀从实验室应用向工业应用的进一步发展,重点是技术创新。目标是激发创新思维,并为从海水中提取铀系统的未来发展提供新的见解,弥合实验室研究与工业实施之间的差距。