Wei Shiqiang, Wang Yixiu, Chen Shuangming, Song Li
National Synchrotron Radiation Laboratory, CAS Center for Excellence in Nanoscience, University of Science and Technology of China Hefei 230029 P. R. China
Zhejiang Institute of Photonelectronics Jinhua 321004 Zhejiang P. R. China.
Chem Sci. 2024 May 1;15(21):7848-7869. doi: 10.1039/d4sc00292j. eCollection 2024 May 29.
In view of the advantages of low cost, environmental sustainability, and high safety, aqueous Zn-ion batteries (AZIBs) are widely expected to hold significant promise and increasingly infiltrate various applications in the near future. The development of AZIBs closely relates to the properties of cathode materials, which depend on their structures and corresponding dynamic evolution processes. Synchrotron radiation light sources, with their rich advanced experimental methods, serve as a comprehensive characterization platform capable of elucidating the intricate microstructure of cathode materials for AZIBs. In this review, we initially examine available cathode materials and discuss effective strategies for structural regulation to boost the storage capability of Zn. We then explore the synchrotron radiation techniques for investigating the microstructure of the designed materials, particularly through synchrotron radiation techniques that can track the dynamic evolution process of the structures. Finally, the summary and future prospects for the further development of cathode materials of AZIBs and advanced synchrotron radiation techniques are discussed.
鉴于水系锌离子电池(AZIBs)具有低成本、环境可持续性和高安全性等优点,人们广泛预期其在不久的将来极具潜力,并将越来越多地渗透到各种应用中。AZIBs的发展与阴极材料的性能密切相关,而阴极材料的性能取决于其结构和相应的动态演变过程。同步辐射光源拥有丰富的先进实验方法,可作为一个综合表征平台,用于阐明AZIBs阴极材料的复杂微观结构。在这篇综述中,我们首先研究了现有的阴极材料,并讨论了用于结构调控以提高锌存储能力的有效策略。然后,我们探索了用于研究设计材料微观结构的同步辐射技术,特别是通过能够跟踪结构动态演变过程的同步辐射技术。最后,讨论了AZIBs阴极材料和先进同步辐射技术进一步发展的总结与未来前景。