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October 23, 2025Molecules14 citationsOpen Access

Advancements and Prospects in Cathode Materials for Aqueous Zinc-Ion Batteries: Mechanisms, Challenges and Modification Strategies

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YGYuewen GongMJMiao JiaQYQiong Yuan

Key Points

  • Aqueous zinc-ion batteries exhibit an energy density based on zinc metal, yet face structural stability challenges.
  • The analysis highlights manganese-based metal oxides and organic polymers as critical cathode materials for these batteries.
  • Innovative strategies, including nanostructure engineering and surface coatings, aim to enhance electrode performance.
  • Future research may elucidate the mechanisms of energy storage and interfacial reactions with targeted in situ characterization.

Abstract

Owing to the inherent safety, environmental friendliness, and high theoretical capacity (820 mAh g−1) of zinc metal, aqueous zinc-ion batteries (AZIBs) have emerged as up-and-coming alternatives to organic lithium-ion batteries. However, the insufficient electrochemically active sites, poor structural stability, and severe interfacial side reactions of cathode materials have always been key challenges, restricting battery gravimetric energy density and cycling stability. This article systematically reviews current mainstream AZIB cathode material systems, encompassing layered manganese- and vanadium-based metal oxides, Prussian blue analogs, and emerging organic polymers. It focuses on analyzing the energy storage mechanisms of different material systems and their structural evolution during Zn2+ (de)intercalation. Furthermore, mechanisms of innovative strategies for improving cathodes are thoroughly examined here, such as nanostructure engineering, lattice doping control, and surface coating modification, to address common issues like structural degradation, manganese/vanadium dissolution, and interface passivation. Finally, this article proposes future research directions: utilizing multi-scale in situ characterization to elucidate actual reaction pathways, constructing artificial interface layers to suppress side reactions, and optimizing full-cell design. This review provides a new perspective for developing practical AZIBs with high specific energy and long lifespans.

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Cite This Study

Gong et al. (2025) studied this question.

synapsesocial.com/papers/68f9f86eb2c35e10cc4e3bd2https://doi.org/10.3390/molecules30204143
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