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磷酸铁锂/碳双微球作为具有增强电化学性能的阴极材料。

LiFePO/C twin microspheres as cathode materials with enhanced electrochemical performance.

作者信息

Peng Yiqiong, Zeng Lingzhi, Dai Shuai, Liu Feng, Rao Xi, Zhang Yongping

机构信息

School of Materials and Energy, Southwest University Chongqing 400715 China

出版信息

RSC Adv. 2023 Mar 1;13(10):6983-6992. doi: 10.1039/d3ra00183k. eCollection 2023 Feb 21.

Abstract

Self-assembled lithium iron phosphate (LiFePO) with tunable microstructure is an effective way to improve the electrochemical performance of cathode materials for lithium ion batteries. Herein, self-assembled LiFePO/C twin microspheres are synthesized by a hydrothermal method using a mixed solution of phosphoric acid and phytic acid as the phosphorus source. The twin microspheres are hierarchical structures composed of primary nano-sized capsule-like particles (about 100 nm in diameter and 200 nm in length). The uniform thin carbon layer on the surface of the particles improves the charge transport capacity. The channel between the particles facilitates the electrolyte infiltration, and the high electrolyte accessibility enables the electrode material to obtain excellent ion transport. The optimal LiFePO/C-60 exhibits excellent rate performance with discharge capacity of 156.3 mA h g and 118.5 mA h g respectively at 0.2C and 10C, and low temperature performances with discharge capacity of 90.67 mA h g and 66.7 mA h g at -15 °C and -25 °C, respectively. This research may provide a new pathway to improve the performance of LiFePO by tuning the micro-structures by adjusting the relative content of phosphoric acid and phytic acid.

摘要

具有可调控微观结构的自组装磷酸铁锂(LiFePO)是提高锂离子电池正极材料电化学性能的有效途径。在此,以磷酸和植酸的混合溶液作为磷源,通过水热法合成了自组装LiFePO/C双微球。双微球是由初级纳米胶囊状颗粒(直径约100 nm,长度约200 nm)组成的分级结构。颗粒表面均匀的薄碳层提高了电荷传输能力。颗粒之间的通道有利于电解质渗透,高电解质可及性使电极材料获得优异的离子传输性能。最佳的LiFePO/C-60表现出优异的倍率性能,在0.2C和10C时的放电容量分别为156.3 mA h g和118.5 mA h g,以及低温性能,在-15°C和-25°C时的放电容量分别为90.67 mA h g和66.7 mA h g。本研究可能为通过调节磷酸和植酸的相对含量来调控微观结构从而提高LiFePO性能提供一条新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9b3f/9977448/fef95e3a6d8f/d3ra00183k-f1.jpg

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