锂离子电池用钒氧化物电极材料研究进展
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作者单位:

江苏科技大学 冶金工程学院, 江苏 张家港 215600

作者简介:

高原(2003—),男,江苏徐州人,本科生,研究方向为钒氧化物负极材料制备研究。

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中图分类号:

TM912;TF125.2+4

基金项目:

国家自然科学基金(52504363); 江苏省自然科学基金(BK20241829); 2024年大学生创新创业训练计划项目(202410289066Z)


Research progress of vanadium oxide as electrode material for lithium-ion batteries
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School of Metallurgy Engineering, Jiangsu University of Science and Technology, Zhangjiagang 215600 , China

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    摘要:

    基于可持续能源需求的日益增长,锂离子电池因其高能量密度、长循环寿命和较低的自放电率等优点,已成为全球科技创新与绿色经济转型的核心焦点,但传统锂离子电池电极材料在高容量输出、高倍率充放电等严苛性能要求下逐渐显露短板,难以适配未来储能场景的发展需求。本综述基于钒原子的多价态可逆性使得钒氧化物在锂离子嵌入和脱嵌过程中能够实现多电子反应,从而在理论上具有较高的比容量,使其在储能领域展现出不可替代的巨大应用潜力等前沿研究进展,首先系统分析了钒氧化物的电化学性质,并用FactSage 8.3版本的Phase Diagram模块精准计算得到V-O体系相图,为材料性能调控提供理论支撑;其次详细总结了水热法、固相法、静电纺丝法等主流合成方法,以及通过与碳材料复合、元素掺杂、纳米结构构建等改性策略以提升材料导电性、结构稳定性及循环性能的研究成果。最后探讨了钒氧化物的优势与应用潜力以及在实际应用中的关键挑战,并提出问题解决策略和未来展望。本文不仅对钒氧化物的核心特性如丰富氧化态、多样晶体结构、良好电化学性能及其成为锂离子电池材料重要候选者的核心逻辑提供了更清晰的理解,同时还深入阐释不同钒氧化物的结构特性如何影响电化学性能,系统梳理合成方法以及对材料性能的调控作用,精准定位钒氧化物在实际应用中的核心挑战并提出解决方案。

    Abstract:

    Against the backdrop of the growing demand for sustainable energy, lithium-ion batteries (LIBs) have become a global focal point for technological innovation and the transition to a green economy, owing to their prominent advantages such as high energy density, long cycle life, and low self-discharge rate. However, traditional LIB electrode materials are increasingly revealing limitations under stringent performance requirements like high-capacity output and high-rate charging/discharging, making it difficult to meet the development needs of future energy storage scenarios. Based on recent research advancements highlighting the irreplaceable potential of vanadium oxides in energy storage-attributed to the multi-valent reversibility of vanadium atoms enabling multi-electron reactions during lithium ion insertion/extraction, thus granting high theoretical specific capacity-this review first systematically analyzes the electrochemical properties of vanadium oxides. The V-O system phase diagram, accurately calculated using the Phase Diagram module of FactSage 8.3, provides theoretical support for material performance modulation. Subsequently, it details mainstream synthesis methods such as hydrothermal, solid-state, and electrospinning, along with modification strategies like compositing with carbon materials, elemental doping, and nanostructure construction, all aimed at enhancing material conductivity, structural stability, and cycling performance. Finally, the advantages and application potential of vanadium oxides are discussed, alongside the key challenges in practical applications, for which solutions and future prospects are proposed. This review not only offers a clearer understanding of the core characteristics of vanadium oxides-such as rich oxidation states, diverse crystal structures, and good electrochemical performance-and the fundamental rationale for their status as key candidates for LIB materials, but also elucidates how the structural features of different vanadium oxides affect their electrochemical properties, systematically summarizes synthesis methods and their regulatory effects on material performance, and precisely identifies the core challenges in practical applications while proposing potential solutions.

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高原, 黄茜, 陈一漫, 等. 锂离子电池用钒氧化物电极材料研究进展[J].中国有色冶金,2025,54(6):69-79.

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  • 收稿日期:2025-05-10
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  • 在线发布日期: 2025-12-26
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