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Self-Recovery Chemistry and Cobalt-Catalyzed Electrochemical Deposition of Cathode for Boosting Performance of Aqueous Zinc-Ion Batteries

机译:阴极的自恢复化学和钴催化电化学沉积以提高水性锌离子电池的性能

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摘要

Rechargeable Zn-ion batteries working with manganese oxide cathodes and mild aqueous electrolytes suffer from notorious cathode dissolution during galvanostatic cycling. Herein, for the first time we demonstrate the dynamic self-recovery chemistry of manganese compound during charge/discharge processes, which strongly determines the battery performance. A cobalt-modified δ-MnO with a redox-active surface shows superior self-recovery capability as a cathode. The cobalt-containing species in the cathode enable efficient self-recovery by continuously catalyzing the electrochemical deposition of active Mn compound, which is confirmed by characterizations of both practical coin-type batteries and a new-design electrolyzer system. Under optimized condition, a high specific capacity over 500 mAh g is achieved, together with a decent cycling performance with a retention rate of 63% over 5,000 cycles. With this cobalt-facilitated deposition effect, the battery with low concentration (0.02 M) of additive Mn in the electrolyte (only 12 atom % to the overall Mn) maintains decent capacity retention.
机译:在恒电流循环过程中,使用锰氧化物阴极和温和水性电解质的可充电Zn离子电池会遭受臭名昭著的阴极溶解。在此,我们首次展示了锰化合物在充电/放电过程中的动态自恢复化学性质,该化学性质强烈地决定了电池的性能。具有氧化还原活性表面的钴改性δ-MnO作为阴极表现出优异的自恢复能力。阴极中的含钴物质可通过连续催化活性Mn化合物的电化学沉积而实现有效的自我回收,这已通过实际硬币型电池和新型电解器系统的特性得到证实。在优化条件下,可实现超过500 mAh g的高比容量,并具有不错的循环性能,在5,000次循环中的保留率为63%。通过这种促进钴的沉积效果,在电解液中具有低浓度(0.02 M)添加剂Mn的电池(仅占总Mn的12原子%)保持了良好的容量保持率。

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