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磷酸锂钒(LiV(PO))正极材料:合成方法、高锂扩散系数和磁不均匀性

LiV(PO) Cathode Material: Synthesis Method, High Lithium Diffusion Coefficient and Magnetic Inhomogeneity.

作者信息

Gavrilova Tatiana, Deeva Yulia, Uporova Anastasiya, Chupakhina Tatiana, Yatsyk Ivan, Rogov Alexey, Cherosov Mikhail, Batulin Ruslan, Khrizanforov Mikhail, Khantimerov Sergey

机构信息

Kazan E. K. Zavoisky Physical-Technical Institute, FRC Kazan Scientific Center of RAS, Sibirsky Tract, 10/7, 420029 Kazan, Russia.

Institute of Solid State Chemistry of the Ural Branch of RAS, Pervomaiskaya Str., 91, 620990 Ekaterinburg, Russia.

出版信息

Int J Mol Sci. 2024 Mar 1;25(5):2884. doi: 10.3390/ijms25052884.

Abstract

LiV(PO) cathodes for Li-ion batteries (LIBs) were synthesized using a hydrothermal method with the subsequent annealing in an argon atmosphere to achieve optimal properties. The X-ray diffraction analysis confirmed the material's single-phase nature, while the scanning electron microscopy revealed a granular structure, indicating a uniform particle size distribution, beneficial for electrochemical performance. Magnetometry and electron spin resonance studies were conducted to investigate the magnetic properties, confirming the presence of the relatively low concentration and highly uniform distribution of tetravalent vanadium ions (V), which indicated low lithium deficiency values in the original structure and a high degree of magnetic homogeneity in the sample, an essential factor for consistent electrochemical behavior. For this pure phase LiV(PO) sample, devoid of any impurities such as carbon or salts, extensive electrochemical property testing was performed. These tests resulted in the experimental discovery of a remarkably high lithium diffusion coefficient D = 1.07 × 10 cm/s, indicating excellent ionic conductivity, and demonstrated impressive stability of the material with sustained performance over 1000 charge-discharge cycles. Additionally, relithiated LiV(PO) (after multiple electrochemical cycling) samples were investigated using scanning electron microscopy, magnetometry and electron spin resonance methods to determine the extent of degradation. The combination of high lithium diffusion coefficients, a low degradation rate and remarkable cycling stability positions this LiV(PO) material as a promising candidate for advanced energy storage applications.

摘要

采用水热法合成了用于锂离子电池(LIBs)的LiV(PO) 阴极,并随后在氩气气氛中进行退火以获得最佳性能。X射线衍射分析证实了材料的单相性质,而扫描电子显微镜显示出颗粒结构,表明粒径分布均匀,这有利于电化学性能。进行了磁力测量和电子自旋共振研究以研究磁性,证实了四价钒离子(V)的浓度相对较低且分布高度均匀,这表明原始结构中的锂缺乏值较低,并且样品中的磁均匀性较高,这是一致电化学行为的一个重要因素。对于这种不含任何杂质(如碳或盐)的纯相LiV(PO) 样品,进行了广泛的电化学性能测试。这些测试实验发现了极高的锂扩散系数D = 1.07 × 10 cm/s,表明具有优异的离子导电性,并证明了该材料在1000次充放电循环中具有令人印象深刻的稳定性和持续性能。此外,使用扫描电子显微镜、磁力测量和电子自旋共振方法对再锂化的LiV(PO)(经过多次电化学循环)样品进行了研究,以确定降解程度。高锂扩散系数、低降解率和出色的循环稳定性相结合,使这种LiV(PO) 材料成为先进储能应用的有前途的候选材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bb16/10932188/7d078f1dafb1/ijms-25-02884-g001.jpg

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