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用于稳定且可逆锌阳极的表面优先晶面。

Surface-Preferred Crystal Plane for a Stable and Reversible Zinc Anode.

作者信息

Zhou Miao, Guo Shan, Li Jialin, Luo Xiongbin, Liu Zhexuan, Zhang Tengsheng, Cao Xinxin, Long Mengqiu, Lu Bingan, Pan Anqiang, Fang Guozhao, Zhou Jiang, Liang Shuquan

机构信息

School of Materials Science and Engineering, Central South University, Changsha, Hunan, 410083, China.

School of Physics and Electronics, Central South University, Changsha, Hunan, 410083, China.

出版信息

Adv Mater. 2021 May;33(21):e2100187. doi: 10.1002/adma.202100187. Epub 2021 Apr 17.

Abstract

Aqueous zinc-ion batteries are largely restricted by the unsatisfactory performance of zinc (Zn) anodes, including their poor stability and irreversibility. In particular, the mechanism behind the electrochemical contrast caused by the surface crystal plane, which is a decisive factor of the electrochemical characteristics of the hostless Zn anode, is still relatively indistinct. Hence, new insight into a novel anode with a surface-preferred (002) crystal plane is provided. The interfacial reaction and morphology evolution are revealed by theoretical analysis and post-mortem/operando experimental techniques, indicating that Zn anodes with more exposed (002) basal planes exhibit free dendrites, no by-products, and weak hydrogen evolution, in sharp contrast to the (100) plane. These features benefit the Zn (002) anode by enabling a long cyclic life of more than 500 h and a high average coulombic efficiency of 97.71% for symmetric batteries, along with delivering long cycling stability and reversibility with life spans of over 2000 cycles for full batteries. This work provides new insights into the design of high-performance Zn anodes for large-scale energy storage and can potentially be applied to other metal anodes suffering from instability and irreversibility.

摘要

水系锌离子电池在很大程度上受到锌(Zn)负极性能不佳的限制,包括其稳定性差和不可逆性。特别是,作为无宿主锌负极电化学特性的决定性因素,由表面晶面引起的电化学反差背后的机制仍相对不明确。因此,本文提供了对一种具有表面择优(002)晶面的新型负极的新见解。通过理论分析和事后/原位实验技术揭示了界面反应和形态演变,结果表明,与(100)面形成鲜明对比的是,具有更多暴露(002)基面的锌负极呈现出自由枝晶、无副产物以及微弱析氢现象。这些特性有利于锌(002)负极,使得对称电池具有超过500小时的长循环寿命和97.71%的高平均库仑效率,同时全电池具有超过2000次循环的长循环稳定性和可逆性。这项工作为大规模储能高性能锌负极的设计提供了新见解,并有可能应用于其他存在稳定性和不可逆性问题的金属负极。

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