Recent Progress of Low‐Dimensional Metal‐Organic Frameworks for Aqueous Zinc‐Based Batteries

Author:

Xing Hanfang12,Han Yu12,Huang Xia34,Zhang Chiyu1,Lyu Miaoqiang34,Chen Kai‐Jie1,Wang Teng12ORCID

Affiliation:

1. Key Laboratory of Special Functional and Smart Polymer Materials of Ministry of Industry and Information Technology, Xi'an Key Laboratory of Functional Organic Porous Materials, School of Chemistry and Chemical Engineering Northwestern Polytechnical University 127 West Youyi Road Xi'an Shaanxi 710072 P. R. China

2. National and Local Joint Engineering Laboratory for Slag Comprehensive Utilization and Environmental Technology, School of Materials Science and Engineering Shaanxi University of Technology Hanzhong Shaanxi 723000 P. R. China

3. Nanomaterials Centre, Australian Institute for Bioengineering and Nanotechnology The University of Queensland St Lucia Brisbane QLD 4072 Australia

4. School of Chemical Engineering The University of Queensland St Lucia Brisbane QLD 4072 Australia

Abstract

AbstractAqueous zinc‐based batteries (AZBs) are promising energy storage solutions with remarkable safety, abundant Zn reserve, cost‐effectiveness, and relatively high energy density. However, AZBs still face challenges such as anode dendrite formation that reduces cycling stability and limited cathode capacity. Recently, low‐dimensional metal‐organic frameworks (LD MOFs) and their derivatives have emerged as promising candidates for improving the electrochemical performance of AZBs owing to their unique morphologies, high structure tunability, high surface areas, and high porosity. However, clear guidelines for developing LD MOF‐based materials for high‐performance AZBs are scarce. In this review, the recent progress of LD MOF‐based materials for AZBs is critically examined. The typical synthesis methods and structural design strategies for improving the electrochemical performance of LD MOF‐based materials for AZBs are first introduced. The recent noteworthy research achievements are systematically discussed and categorized based on their applications in different AZB components, including cathodes, anodes, separators, and electrolytes. Finally, the limitations are addressed and the future perspectives are outlined for LD MOFs and their derivatives in AZB applications. This review provides clear guidance for designing high‐performance LD MOF‐based materials for advanced AZBs.

Funder

Key Research and Development Projects of Shaanxi Province

National Natural Science Foundation of China

Publisher

Wiley

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