Department of Chemistry, Northeast Normal University, Changchun 130022, Jilin, People's Republic of China.
MOE Key Laboratory for UV Light-Emitting Materials and Technology, Northeast Normal University, Changchun 130022, Jilin, People's Republic of China.
Nanotechnology. 2023 Mar 6;34(20). doi: 10.1088/1361-6528/acb944.
With the rapid development of sodium-ion batteries (SIBs), it is urgent to exploit the cathode materials with good rate capability, attractive high energy density and considerable long cycle performance. NaV(PO)(NVP), as a NASICON-type electrode material, is one of the cathode materials with great potential for application because of its good thermal stability and stable. However, NVP has the inherent problem of low electronic conductivity, and various strategies are proposed to improve it, moreover, nanotechnology or nanostructure are involved in these strategies, the construction of nanostructured active particles and nanocomposites with conductive carbon networks have been shown to be effective in improving the electrical conductivity of NVP. Herein, we review the research progress of NVP performance improvement strategies from the perspective of nanostructures and classifies the prepared nanomaterials according to their different nano-dimension. In addition, NVP nanocomposites are reviewed in terms of both preparation methods and promotion effects, and examples of NVP nanocomposites at different nano-dimension are given. Finally, some personal views are presented to provide reasonable guidance for the research and design of high-performance polyanionic cathode materials of SIBs.
随着钠离子电池(SIBs)的快速发展,迫切需要开发具有良好倍率性能、高能量密度和可观长循环性能的正极材料。NaV(PO)(NVP) 作为一种 NASICON 型电极材料,由于其良好的热稳定性和稳定性,是一种极具应用潜力的正极材料之一。然而,NVP 存在固有电子电导率低的问题,提出了各种策略来改善它,此外,这些策略涉及纳米技术或纳米结构,构建具有导电碳网络的纳米结构活性颗粒和纳米复合材料已被证明可以有效提高 NVP 的电导率。本文从纳米结构的角度综述了 NVP 性能改善策略的研究进展,并根据不同的纳米尺寸对所制备的纳米材料进行了分类。此外,还从制备方法和促进效果两方面综述了 NVP 纳米复合材料,并给出了不同纳米尺寸下 NVP 纳米复合材料的实例。最后,提出了一些个人观点,为高性能 SIBs 聚阴离子正极材料的研究和设计提供合理的指导。