Multi‐Scale Functionally Designed ZnWO4 Artificial Interphase for Ultra‐Stable Aqueous Zn Metal Anodes Under High Current Rates

Author:

Yi Chao1,Jiao Long1,Wang Jizhen1,Ma Yuchao1,Bai Hongyuan1,Liu Qiaoyun1,Wang Shaoyu1,Xin Wei1,Lei Yechen2,Zhang Tian2,Yang Leixin1,Shu Dengkun1,Yang Shuo1,Li Kaihua1,Li Chenyang1,Li Huan3,Zhang Wenjun2ORCID,Cheng Bowen1

Affiliation:

1. Cheng State Key Laboratory of Biobased Fiber Manufacturing Technology Tianjin Key Laboratory of Pulp and Paper Tianjin University of Science and Technology Tianjin 300457 China

2. Department of Materials Science and Engineering & Center of Super‐Diamond and Advanced Films City University of Hong Kong 83 Tat Chee Avenue Hong Kong 999077 China

3. School of Chemical Engineering The University of Adelaide Adelaide, SA 5005 Australia

Abstract

AbstractAqueous zinc ion batteries have received unprecedented attention owing to their superior safety and sustainability, yet their cycling stability especially at high current rates is greatly limited by the poor reversibility of Zn metal anodes, due to the delayed ion transport, severe water‐induced side reactions, and uncontrollable dendrites growth at electrolyte/electrode interface. Herein, a robust and multi‐scale functionally designed amorphous ZnWO4 (ZWO) artificial interphase that fully addresses the aforementioned issues, is proposed. The modified Zn anodes deliver remarkable stability, surpassing 3000 h of operation at a high current density of 20 mA cm−2 in symmetrical cells. Even under harsh conditions of 20 mA cm−2 and 10 mAh cm−2, the electrode demonstrates steady cycling for over 600 h with low overpotential. The excellent cycling stability and rate performance are mainly attributed to a range of collective functionalities of ZWO interphase, including short‐range and isotropic ion migration, superior ion‐screening capability, and a thermodynamically enhanced energy barrier for hydrogen evolution reaction (HER) during Zn plating. These findings highlight the significance of the multi‐scale functional interphase in overcoming key barriers associated with zinc anodes under high current density, offering a facile and insightful approach for achieving high‐performance Zn metal anodes.

Funder

National Natural Science Foundation of China

Tianjin Research Innovation Project for Postgraduate Students

Publisher

Wiley

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