Recent development in addressing challenges and implementing strategies for manganese dioxide cathodes in aqueous zinc ion batteries

Chi Luo, Haoyun Lei, Yiyang Xiao, Xiaoxin Nie, Yuhang Li, Qian Wang, Wenlong Cai, Chunlong Dai, Meng Yao, Yun Zhang, Du Yuan
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Abstract

Safety issues of energy storage devices in daily life are receiving growing attention, together with resources and environmental concerns. Aqueous zinc ion batteries (AZIBs) have emerged as promising alternatives for extensive energy storage due to their ultra-high capacity, safety, and eco-friendliness. Manganese-based compounds are key to the functioning of AZIBs as the cathode materials thanks to their high operating voltage, substantial charge storage capacity, and eco-friendly characteristics. Despite these advantages, the development of high-performance Mn-based cathodes still faces the critical challenges of structural instability, manganese dissolution, and the relatively low conductivity. Primarily, the charge storage mechanism of manganese-based AZIBs is complex and subject to debate. In view of the above, this review focuses on the mostly investigated MnO2-based cathodes and comprehensively outlines the charge storage mechanisms of MnO2-based AZIBs. Current optimization strategies are systematically summarized and discussed. At last, the perspectives on elucidating advancing MnO2 cathodes are provided from the mechanistic, synthetic, and application-oriented aspects.
应对锌离子水电池中二氧化锰阴极的挑战和实施战略的最新进展
日常生活中,储能设备的安全问题以及资源和环境问题日益受到关注。锌离子水电池(AZIBs)以其超高容量、安全性和环保性而成为广泛储能的理想替代品。锰基化合物具有工作电压高、电荷存储容量大和环保等特点,是 AZIBs 作为阴极材料发挥作用的关键。尽管具有这些优势,高性能锰基阴极的开发仍然面临着结构不稳定、锰溶解和电导率相对较低等严峻挑战。最主要的是,锰基 AZIB 的电荷存储机制十分复杂,且存在争议。有鉴于此,本综述将重点放在研究最多的二氧化锰基阴极上,并全面概述了二氧化锰基 AZIB 的电荷存储机制。系统地总结和讨论了当前的优化策略。最后,还从机理、合成和应用等方面展望了MnO2阴极的发展前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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