安徽工业大学能源与环境学院,安徽 马鞍山 243002
陈志杰(1991—),男,博士,讲师,主要研究方向为新能源材料与器件,E-mail:czj02320@ahut.edu.cn;
刘小芳,教授,主要研究方向为系统节能和燃烧污染物控制,E-mail:xfliu2003@163.com。
收稿:2025-11-10,
修回:2025-12-16,
纸质出版:2026-06-28
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陈志杰, 颜如玉, 王冰, 等. 水系多价金属离子电池普鲁士蓝类正极材料的研究进展[J]. 储能科学与技术, 2026, 15(6): 2148-2171.
CHEN Zhijie, YAN Ruyu, WANG Bing, et al. Research progress in Prussian blue-type cathode materials for aqueous multivalent metal-ion batteries[J]. Energy Storage Science and Technology, 2026, 15(6): 2148-2171.
陈志杰, 颜如玉, 王冰, 等. 水系多价金属离子电池普鲁士蓝类正极材料的研究进展[J]. 储能科学与技术, 2026, 15(6): 2148-2171. DOI: 10.19799/j.cnki.2095-4239.2025.1013.
CHEN Zhijie, YAN Ruyu, WANG Bing, et al. Research progress in Prussian blue-type cathode materials for aqueous multivalent metal-ion batteries[J]. Energy Storage Science and Technology, 2026, 15(6): 2148-2171. DOI: 10.19799/j.cnki.2095-4239.2025.1013.
水系多价金属离子电池(aqueous multivalent metal-ion batteries,AMMBs)因成本低廉、资源丰富、环境友好以及本质安全等优点,有望成为替代锂离子电池进行大规模储能的前景技术。在构建此类电池时,开发兼具结构稳定性与快速离子传输能力的正极材料至关重要。结构稳定且能提供快速离子扩散通道的正极材料是构建AMMBs的关键。普鲁士蓝类似物(Prussian blue analogous,PBAs)具有开放三维框架结构、丰富的氧化还原位点及由可调控的元素组成,成为AMMBs应用前景广泛的正极材料。尽管如此,PBAs在实际应用中仍面临诸多挑战。为应对PBAs材料存在的结晶水/空位稳定性差、导电性较低等固有缺陷,以及在多价离子嵌入/脱出过程中引发的体积变化与结构相变等问题,本文系统总结了元素掺杂与比例调控、形貌与结构优化、复合策略以及结晶水与空位调控四类改性策略。在此基础上,本文进一步以金属离子的价态为分类依据,将PBAs在水系电池中的应用系统地划分为二价离子体系(Zn
2+
、Mg
2+
、Cu
2+
、Ca
2+
、Fe
2+
)与三价离子体系(Al
3+
),并总结了其在不同体系中的电化学性能,以期为AMMBs中PBAs正极材料的研究提供理论与实验参考。
Aqueous multivalent metal-ion batteries (AMMBs) represent a promising alternative to lithium-ion batteries for large-scale energy stora
ge owing to their low cost
high natural abundance
environmental friendliness
and intrinsic safety. Cathode materials with stable structures and rapid ion-diffusion channels are crucial for the development of high-performance AMMBs. Prussian blue analogues (PBAs) are considered highly promising cathode materials for AMMBs because of their open three-dimensional framework
abundant redox-active sites
and tunable elemental composition. Despite these advantages
PBAs still face several challenges in practical applications. To address the inherent limitations of PBAs
such as poor crystallographic water/vacancy stability and low intrinsic electronic conductivity
as well as volume changes and structural phase transitions induced by the insertion/deinsertion of multivalent ions during the process
this review systematically summarizes four categories of modification strategies: element doping and stoichiometric tuning
morphology and structure optimization
composite material strategies
and crystallographic water/vacancy engineering. Based on these strategies
this study further classifies the applications of PBAs in aqueous batteries according to the valence states of metal ions
dividing them into divalent-ion systems (Zn
2+
Mg
2+
Cu
2+
Ca
2+
and Fe
2+
) and trivalent-ion systems (Al
3+
)
and summarizes their electrochemical performance in different systems. It provides theoretical and experimental guidance for future research on PBAs as cathode materials in AMMBs.
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