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Revealing the Impact of Oxygen Dissolved in Electrolytes on Aqueous Zinc-Ion Batteries

机译:揭示溶解在电解质中的氧气对水性锌离子电池的影响

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摘要

Aqueous zinc-ion batteries (ZIBs) are promising low-cost and high-safety energy storage devices. However, their capacity decay especially at the initial cyclic stage is a serious issue. Herein, we reveal that the dissolved oxygen in aqueous electrolyte has significant impact on the electrochemistry of Zn anode and ZIBs. After removing oxygen, the symmetrical set-up of Zn/Zn is capable of reversible plating/stripping with a 20-fold lifetime enhancement compared with that in oxygen enrichment condition. Taking aqueous Zn-MnO battery as an example, although the presence of oxygen can contribute an extra capacity over 20% at the initial cycles due to the electrocatalytic activity of MnO with oxygen, the corrosion of Zn anode can be eliminated in the oxygen-free circumstance and thus offering a better reversible energy storage system. The impact of the dissolved oxygen on the cycling stability also exists in other ZIBs using vanadium-based compounds, Birnessite and Prussian blue analog cathodes.
机译:锌离子水电池(ZIBs)是有前途的低成本和高安全性的能量存储设备。但是,它们的容量衰减尤其是在初始循环阶段是一个严重的问题。在这里,我们揭示了电解质水溶液中的溶解氧对Zn阳极和ZIBs的电化学有重大影响。除去氧气后,与氧气富集条件相比,Zn / Zn的对称结构能够进行可逆镀覆/剥离,使用寿命增加20倍。以含水的Zn-MnO电池为例,尽管由于MnO对氧气的电催化活性,氧气的存在在初始循环中可以贡献超过20%的额外容量,但在无氧气的情况下,可以消除Zn阳极的腐蚀。在这种情况下,因此提供了更好的可逆储能系统。使用钒基化合物,水钠锰矿和普鲁士蓝类似物阴极的其他ZIB中也存在溶解氧对循环稳定性的影响。

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