4.7 Review

Interfacial Engineering Strategy for High-Performance Zn Metal Anodes

Journal

NANO-MICRO LETTERS
Volume 14, Issue 1, Pages -

Publisher

SHANGHAI JIAO TONG UNIV PRESS
DOI: 10.1007/s40820-021-00764-7

Keywords

Interfacial engineering; Zn anode; Dendrites; Side reactions; Aqueous zinc-ion batteries

Funding

  1. National Natural Science Foundation of China [51872090, 51772097, 51972346]
  2. Hebei Natural Science Fund for Distinguished Young Scholar [E2019209433]
  3. Natural Science Foundation of Hebei Province [E2020209151]
  4. Hunan Natural Science Fund for Distinguished Young Scholar [2021JJ10064]
  5. Program of Youth Talent Support for Hunan Province [2020RC3011]
  6. Innovation-Driven Project of Central South University [2020CX024]

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This article reviews the role of interfacial engineering in inhibiting the growth of Zn dendrites and the occurrence of side reactions. Researchers have regulated the deposition behavior of Zn ions through surface modification and the addition of electrolyte additives to achieve uniform Zn nucleation and flat Zn deposition, improving the cycling stability of Zn anodes.
Due to their high safety and low cost, rechargeable aqueous Zn-ion batteries (RAZIBs) have been receiving increased attention and are expected to be the next generation of energy storage systems. However, metal Zn anodes exhibit a limited-service life and inferior reversibility owing to the issues of Zn dendrites and side reactions, which severely hinder the further development of RAZIBs. Researchers have attempted to design high-performance Zn anodes by interfacial engineering, including surface modification and the addition of electrolyte additives, to stabilize Zn anodes. The purpose is to achieve uniform Zn nucleation and flat Zn deposition by regulating the deposition behavior of Zn ions, which effectively improves the cycling stability of the Zn anode. This review comprehensively summarizes the reaction mechanisms of interfacial modification for inhibiting the growth of Zn dendrites and the occurrence of side reactions. In addition, the research progress of interfacial engineering strategies for RAZIBs is summarized and classified. Finally, prospects and suggestions are provided for the design of highly reversible Zn anodes.

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