Additives for Aqueous Zinc‐Ion Batteries: Recent Progress, Mechanism Analysis, and Future Perspectives

Author:

Cao Jianghui12,Zhao Fang1,Guan Weixin3,Yang Xiaoxuan4,Zhao Qidong1,Gao Liguo1,Ren Xuefeng1,Wu Gang4,Liu Anmin1ORCID

Affiliation:

1. School of Chemical Engineering, Ocean and Life Sciences Dalian University of Technology Panjin 124221 China

2. Leicester International Institute Dalian University of Technology Panjin 124221 China

3. Materials Science and Engineering Program Texas Materials Institute The University of Texas at Austin Austin TX 78712 USA

4. Department of Chemical and Biological Engineering University at Buffalo The State University of New York Buffalo NY 14260 USA

Abstract

AbstractAqueous zinc‐ion batteries (ZIBs) stand out as a promising next‐generation electrochemical energy storage technology, offering notable advantages such as high specific capacity, enhanced safety, and cost‐effectiveness. However, the application of aqueous electrolytes introduces challenges: Zn dendrite formation and parasitic reactions at the anode, as well as dissolution, electrostatic interaction, and by‐product formation at the cathode. In addressing these electrode‐centric problems, additive engineering has emerged as an effective strategy. This review delves into the latest advancements in electrolyte additives for ZIBs, emphasizing their role in resolving the existing issues. Key focus areas include improving morphology and reducing side reactions during battery cycling using synergistic effects of modulating anode interface regulation, zinc facet control, and restructuring of hydrogen bonds and solvation sheaths. Special attention is given to the efficacy of amino acids and zwitterions due to their multifunction to improve the cycling performance of batteries concerning cycle stability and lifespan. Additionally, the recent additive advancements are studied for low‐temperature and extreme weather applications meticulously. This review concludes with a holistic look at the future of additive engineering, underscoring its critical role in advancing ZIB performance amidst the complexities and challenges of electrolyte additives.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

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