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Polyaniline-intercalated manganese dioxide nanolayers as a high-performance cathode material for an aqueous zinc-ion battery

机译:聚苯胺插层的二氧化锰纳米层作为水性锌离子电池的高性能阴极材料

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Rechargeable zinc–manganese dioxide batteries that use mild aqueous electrolytes are attracting extensive attention due to high energy density and environmental friendliness. Unfortunately, manganese dioxide suffers from substantial phase changes (e.g., from initial α-, β-, or γ-phase to a layered structure and subsequent structural collapse) during cycling, leading to very poor stability at high charge/discharge depth. Herein, cyclability is improved by the design of a polyaniline-intercalated layered manganese dioxide, in which the polymer-strengthened layered structure and nanoscale size of manganese dioxide serves to eliminate phase changes and facilitate charge storage. Accordingly, an unprecedented stability of 200 cycles with at a high capacity of 280?mA?h?g?1 (i.e., 90% utilization of the theoretical capacity of manganese dioxide) is achieved, as well as a long-term stability of 5000 cycles at a utilization of 40%. The encouraging performance sheds light on the design of advanced cathodes for aqueous zinc-ion batteries.
机译:由于能量密度高和环境友好,使用温和水性电解质的可充电锌锰氧化物电池受到了广泛的关注。不幸的是,二氧化锰在循环期间遭受实质性的相变(例如,从初始的α-,β-或γ-相到层状结构以及随后的结构塌陷),导致在高充电/放电深度下非常差的稳定性。在本文中,通过设计聚苯胺插入的层状二氧化锰提高了循环能力,其中聚合物增强的层状结构和二氧化锰的纳米级尺寸用于消除相变并促进电荷存储。因此,达到了前所未有的200次循环的稳定性,并具有280?mA?h?g?1的高容量(即,二氧化锰的理论容量利用率为90%),以及5000的长期稳定性。循环利用率为40%。令人鼓舞的性能为水性锌离子电池高级阴极的设计提供了启示。

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