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超薄纳米MoO涂层对无枝晶锌负极的亲锌性锌导体调控

Zincophile Zn Conductor Regulation by Ultrathin Nano MoO Coating for Dendrite-Free Zn Anode.

作者信息

Lin Haisheng, Cai Shujuan, Li Lanyan, Ma Zhongyun, Wang Xianyou, Liang Shuquan, Fang Guozhao, Xiao Manjun, Luo Zhigao

机构信息

College of Chemistry, Xiangtan University, Xiangtan, 411105, China.

School of Science, Hunan University of Technology and Business, Changsha, 410205, China.

出版信息

Small Methods. 2025 Apr;9(4):e2401096. doi: 10.1002/smtd.202401096. Epub 2024 Sep 13.

Abstract

Aqueous battery with nonflammable and instinctive safe properties has received great attention. However, issues related to Zn anode such as side reactions and rampant dendrite growth hinder the long-term circulation of AZMBs. Herein, an ultrathin(35 nm) MoO coating is deposited on the Zn anode by means of vacuum vapor deposition for the first time. Due to the peculiar layer structure of MoO, insertion of Zn in ZnMoO acts as Zn ion conductor, which regulates Zn deposition in an ordered manner. Additionally, the MoO coating can also inhibit the hydrogen evolution and corrosion reactions at the interface. Therefore, both Zn//MoO@Cu asymmetric battery and Zn symmetric battery cells manage to deliver satisfactory electrochemical performances. The symmetric cell assembled with MoO@Zn shows a significant long cycle life of more than 1600 h at a current density of 2 mA cm. Meanwhile, the MoO@Zn//Cu asymmetric cell exhibits an ultrahigh Zn deposition/stripping efficiency of 99.82% after a stable cycling of 650 h at 2 mA cm. This study proposes a concept of "zincophile Zn conductor regulation" to dictate Zn electrodeposition and broadens novel design of vacuum evaporation for nano MoO modified Zn anodes.

摘要

具有不可燃和本质安全特性的水系电池受到了广泛关注。然而,与锌阳极相关的问题,如副反应和枝晶生长猖獗,阻碍了水系锌金属电池的长期循环。在此,首次通过真空气相沉积法在锌阳极上沉积了一层超薄(35纳米)的MoO涂层。由于MoO独特的层状结构,Zn插入ZnMoO中充当锌离子导体,以有序方式调节锌的沉积。此外,MoO涂层还可以抑制界面处的析氢和腐蚀反应。因此,Zn//MoO@Cu不对称电池和锌对称电池都具有令人满意的电化学性能。与MoO@Zn组装的对称电池在2 mA cm的电流密度下显示出超过1600小时的显著长循环寿命。同时,MoO@Zn//Cu不对称电池在2 mA cm下稳定循环650小时后,表现出99.82%的超高锌沉积/剥离效率。本研究提出了“亲锌锌导体调控”的概念来指导锌的电沉积,并拓宽了用于纳米MoO修饰锌阳极的真空蒸发新设计。

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