Hu Jiawen, Li Xinwei, Liang Qianqian, Xu Li, Ding Changsheng, Liu Yu, Gao Yanfeng
School of Materials Science and Engineering, Shanghai University, Shanghai, 200444, People's Republic of China.
Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai, 200050, People's Republic of China.
Nanomicro Lett. 2024 Oct 4;17(1):33. doi: 10.1007/s40820-024-01526-x.
NaV(PO) (NVP) has garnered great attentions as a prospective cathode material for sodium-ion batteries (SIBs) by virtue of its decent theoretical capacity, superior ion conductivity and high structural stability. However, the inherently poor electronic conductivity and sluggish sodium-ion diffusion kinetics of NVP material give rise to inferior rate performance and unsatisfactory energy density, which strictly confine its further application in SIBs. Thus, it is of significance to boost the sodium storage performance of NVP cathode material. Up to now, many methods have been developed to optimize the electrochemical performance of NVP cathode material. In this review, the latest advances in optimization strategies for improving the electrochemical performance of NVP cathode material are well summarized and discussed, including carbon coating or modification, foreign-ion doping or substitution and nanostructure and morphology design. The foreign-ion doping or substitution is highlighted, involving Na, V, and PO sites, which include single-site doping, multiple-site doping, single-ion doping, multiple-ion doping and so on. Furthermore, the challenges and prospects of high-performance NVP cathode material are also put forward. It is believed that this review can provide a useful reference for designing and developing high-performance NVP cathode material toward the large-scale application in SIBs.
NaV(PO)(NVP)凭借其良好的理论容量、优异的离子传导性和高结构稳定性,作为钠离子电池(SIBs)的一种潜在正极材料已备受关注。然而,NVP材料固有的电子传导性差和钠离子扩散动力学迟缓,导致其倍率性能较差且能量密度不尽人意,这严重限制了它在SIBs中的进一步应用。因此,提高NVP正极材料的储钠性能具有重要意义。到目前为止,已经开发了许多方法来优化NVP正极材料的电化学性能。在这篇综述中,对改善NVP正极材料电化学性能的优化策略的最新进展进行了全面总结和讨论,包括碳包覆或改性、异质离子掺杂或取代以及纳米结构和形貌设计。重点介绍了异质离子掺杂或取代,涉及Na、V和PO位点,包括单位点掺杂、多位点掺杂、单离子掺杂、多离子掺杂等。此外,还提出了高性能NVP正极材料面临的挑战和前景。相信这篇综述能够为设计和开发高性能NVP正极材料以实现其在SIBs中的大规模应用提供有益的参考。