物理化学学报

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钠离子电池Na4Fe3(PO4)2P2O7正极材料的结构设计及性能调控

范红红1,2,3, 陈徐淼3, 李福民3, 曹余良3, 方永进3   

  1. 1 湖北文理学院食品科学与化学工程学院,湖北 襄阳 441053;
    2 湖北隆中实验室,湖北 襄阳 441000;
    3 武汉大学化学与分子科学学院,湖北 武汉 430072
  • 收稿日期:2025-12-16 修回日期:2026-01-09 录用日期:2026-01-19
  • 通讯作者: 方永进 E-mail:fangyj@whu.edu.cn
  • 基金资助:
    国家自然科学基金(52402250, U25A20240, 22479117)资助项目

Structure design and electrochemical performance regulation of Na4Fe3(PO4)2P2O7 cathode materials for sodium-ion batteries

Honghong Fan1,2,3, Xumiao Chen3, Fumin Li3, Yuliang Cao3, Yongjin Fang3   

  1. 1 School of Food Science and Chemical Engineering, Hubei University of Arts and Science, Xiangyang 441053, Hubei Province, China;
    2 Hubei Longzhong Laboratory, Xiangyang 441000, Hubei Province, China;
    3 College of Chemistry and Molecular Sciences, Wuhan University, Wuhan 430072, Hubei Province, China
  • Received:2025-12-16 Revised:2026-01-09 Accepted:2026-01-19
  • Contact: Yongjin Fang E-mail:fangyj@whu.edu.cn

摘要: 钠离子电池凭借其资源丰富、成本低廉及安全性高等优势,在规模储能领域显示出重要的应用价值。作为一种典型的聚阴离子型正极材料,焦磷酸磷酸铁钠(Na4Fe3(PO4)2P2O7,简称NFPP)具有稳定的NASICON型三维骨架结构、适中的工作电压(~3.1 V)、优异的结构可逆性以及较低的成本,被认为是理想的钠离子电池正极材料之一,受到学术界和产业界的广泛关注。然而,该材料仍存在本征电子电导率低、Na+迁移动力学缓慢、空气稳定性差及电极压实密度低等问题。本文系统综述了NFPP材料的研究进展,在阐释其结构与电化学性能之间构效关系的基础上,探讨了合成方法对材料微观结构的调控机制,深入分析了元素掺杂、碳复合及非化学计量比设计等策略在提升电子/离子传导效率和结构鲁棒性方面的协同作用机理,并对多尺度结构设计、人工智能辅助研究、宽温域工作性能及产业化应用等未来研究方向进行了展望,以期为高性能钠离子电池的开发提供理论指导。

关键词: 钠离子电池, 正极材料, Na4Fe3(PO4)2P2O7, 电化学性能

Abstract: Sodium-ion batteries (SIBs) have been considered as a promising electrochemical system for large-scale energy storage due to their advantages of abundant sodium reserves, low cost, and reliable safety. As a typical polyanionic-type cathode material, Na4Fe3(PO4)2P2O7 (NFPP) is regarded as an ideal cathode material for SIBs, featuring a stable three-dimensional NASICON-type framework that ensures robust structural integrity, distinct working voltage (~3.1 V), outstanding structural reversibility, and overall low-cost iron-based chemistry. Consequently, NFPP has attracted widespread attention from both academic and industrial communities. Nevertheless, NFPP still faces several intrinsic challenges that hinder its practical application, such as insufficient electronic conductivity, sluggish Na+ migration kinetics within the crystal lattice, sensitivity to moisture and atmospheric gases, and relatively low tap density. This review systematically summarizes the recent progress on NFPP cathode material for SIBs. Based on clarifying the fundamental relationship between its crystal/electronic structure and electrochemical performance, the regulatory mechanisms of various synthesis methods-including solid-phase reaction, sol-gel, electrospinning, and spray drying processes-on its microstructures, morphologies, and phase purity are discussed in detail. Furthermore, the synergistic mechanisms of advanced modification strategies are comprehensively analyzed, with a focus on elemental doping, carbon decoration, and non-stoichiometric design. Specifically, rational elemental doping can tailor the electronic structure and narrow the bandgap to enhance electronic conductivity, while the induced lattice distortion can simultaneously optimize Na+ diffusion pathways, thus enhancing electrochemical/ionic transport efficiency. Carbon-based compositing, through methods such as in situ carbon coating or hybridization with conductive carbons (e.g., carbon nanotube or graphene), constructs continuous conductive networks to facilitate electron transport and acts as a protective barrier against environmental degradation. Additionally, non-stoichiometric engineering can precisely regulate crystal defects and Na+ site occupancy, thereby enhancing transport kinetics and structural robustness during the repeated sodiation/desodiation process. Finally, future research directions including multi-scale architecture design, artificial intelligence-accelerated development, wide-temperature (especially low-temperature) operation, and industrial applications are prospected, aiming to provide theoretical guidance for the development of high-performance, cost-effective sodium-ion batteries based on NFPP cathodes.

Key words: Sodium-ion battery, Cathode materials, Na4Fe3(PO4)2P2O7, Electrochemical performance