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通过原位生长的ZnSe培育器对界面进行调控以实现高度可逆的锌金属阳极

Interfacial Manipulation via In Situ Grown ZnSe Cultivator toward Highly Reversible Zn Metal Anodes.

作者信息

Yang Xianzhong, Li Chao, Sun Zhongti, Yang Shuai, Shi Zixiong, Huang Rong, Liu Bingzhi, Li Shuo, Wu Yuhan, Wang Menglei, Su Yiwen, Dou Shixue, Sun Jingyu

机构信息

College of Energy, Soochow Institute for Energy and Materials Innovations (SIEMIS), Jiangsu Provincial Key Laboratory for Advanced Carbon Materials and Wearable Energy Technologies, Soochow University, Suzhou, 215006, P. R. China.

Beijing Academy of Quantum Information Sciences, Beijing, 100193, P. R. China.

出版信息

Adv Mater. 2021 Dec;33(52):e2105951. doi: 10.1002/adma.202105951. Epub 2021 Oct 22.

Abstract

Zn metal anode has garnered growing scientific and industrial interest owing to its appropriate redox potential, low cost, and high safety. Nevertheless, the instability of Zn anode caused by dendrite formation, hydrogen evolution, and side reactions has greatly hampered its commercialization. Herein, an in situ grown ZnSe overlayer is crafted over one side of commercial Zn foil via chemical vapor deposition in a scalable manner, aiming to achieve optimized electrolyte/Zn interfaces with large-scale viability. Impressively, thus-derived ZnSe coating functions as a cultivator to guide oriented growth of Zn (002) plane at the infancy stage of stripping/plating cycles, thereby inhibiting the formation of Zn dendrites and the occurrence of side reactions. As a result, high cyclic stability (1530 h at 1.0 mA cm /1.0 mAh cm ; 172 h at 30.0 mA cm /10.0 mAh cm ) in symmetric cells is harvested. Meanwhile, when paired with V O based cathode, assembled full cell achieves an outstanding capacity (194.5 mAh g ) and elongated lifespan (a capacity retention of 84% after 1000 cycles) at 5.0 A g . The reversible Zn anode enabled by the interfacial manipulation strategy via ZnSe cultivator is anticipated to satisfy the demand of commercial use.

摘要

锌金属阳极因其合适的氧化还原电位、低成本和高安全性而受到越来越多的科研和工业关注。然而,由枝晶形成、析氢和副反应导致的锌阳极不稳定性极大地阻碍了其商业化进程。在此,通过化学气相沉积以可扩展的方式在商用锌箔的一侧原位生长ZnSe覆盖层,旨在实现具有大规模可行性的优化电解质/锌界面。令人印象深刻的是,由此获得的ZnSe涂层在剥离/电镀循环的初期阶段起到培育器的作用,引导Zn(002)平面的取向生长,从而抑制锌枝晶的形成和副反应的发生。结果,在对称电池中收获了高循环稳定性(在1.0 mA cm²/1.0 mAh cm²下为1530小时;在30.0 mA cm²/10.0 mAh cm²下为172小时)。同时,当与基于V₂O₅的阴极配对时,组装的全电池在5.0 A g⁻¹下实现了出色的容量(194.5 mAh g⁻¹)和延长的寿命(1000次循环后容量保持率为84%)。通过ZnSe培育器的界面操纵策略实现的可逆锌阳极有望满足商业使用的需求。

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