Shi Hucheng, Wang Guixin, Wang Zhechen, Yang Lin, Zhang Shu, Dong Shanmu, Qu Baihua, Du Aobing, Li Zhenyou, Zhou Xiaoyuan, Cui Guanglei
Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, Qingdao, 266101, China.
Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing, 100049, China.
Adv Sci (Weinh). 2024 Jul;11(25):e2401536. doi: 10.1002/advs.202401536. Epub 2024 Apr 6.
Rechargeable magnesium batteries (RMBs) have garnered significant attention due to their potential to provide high energy density, utilize earth-abundant raw materials, and employ metal anode safely. Currently, the lack of applicable cathode materials has become one of the bottleneck issues for fully exploiting the technological advantages of RMBs. Recent studies on Mg cathodes reveal divergent storage performance depending on the electrolyte formulation, posing interfacial issues as a previously overlooked challenge. This minireview begins with an introduction of representative cathode-electrolyte interfacial phenomena in RMBs, elaborating on the unique solvation behavior of Mg, which lays the foundation for interfacial chemistries. It is followed by presenting recently developed strategies targeting the promotion of Mg desolvation in the electrolyte and alternative cointercalation approaches to circumvent the desolvation step. In addition, efforts to enhance the cathode-electrolyte compatibility via electrolyte development and interfacial engineering are highlighted. Based on the abovementioned discussions, this minireview finally puts forward perspectives and challenges on the establishment of a stable interface and fast interfacial chemistry for RMBs.
可充电镁电池(RMBs)因其具有提供高能量密度、使用储量丰富的原材料以及安全使用金属阳极的潜力而备受关注。目前,缺乏适用的阴极材料已成为充分发挥可充电镁电池技术优势的瓶颈问题之一。最近对镁阴极的研究表明,根据电解质配方的不同,其存储性能存在差异,这使得界面问题成为一个此前被忽视的挑战。本综述首先介绍了可充电镁电池中典型的阴极 - 电解质界面现象,阐述了镁独特的溶剂化行为,这为界面化学奠定了基础。接着介绍了最近开发的旨在促进电解质中镁去溶剂化的策略以及规避去溶剂化步骤的替代共嵌入方法。此外,还强调了通过电解质开发和界面工程来增强阴极 - 电解质兼容性的努力。基于上述讨论,本综述最后就建立可充电镁电池稳定界面和快速界面化学提出了观点和挑战。