碳添加剂对LiFePO4/C复合材料锂离子扩散动力学的影响

Thanh Dinh Duc, A. Nguyen, T. Nguyen, Hang Thi La, P. Le
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引用次数: 1

摘要

介绍:采用物理混合辅助溶剂热法合成LiFePO4/C复合材料。研究了不同种类的碳材料,包括0D(碳Ketjen黑),1D(碳纳米管)和2D(石墨烯)材料。溶剂热法合成的碳包覆LiFePO4的x射线衍射图显示为纯晶相,未出现第二相。片状和棒状LiFePO4粒径在80 ~ 200 nm之间,在碳基体中分散良好。通过计算的扩散系数评价锂离子的扩散动力学,探讨碳混合的影响。方法:研究了锂离子电池用LiFePO4/C复合材料的结构、形貌和锂离子扩散动力学。使用了不同的表征方法,包括粉末x射线(用于晶体结构);透射电镜(用于颗粒和形态观察)和循环伏安法(用于电化学动力学研究)。结果:LiFePO4/C复合材料通过混合工艺制备成功,在计算的扩散系数范围内,添加碳的种类显著提高了LiFePO4/C复合材料的电化学性能。结论:与LiFePO4/石墨烯相比,LiFePO4/Ketjen black (KB)和LiFePO4/CNT复合材料具有优异的离子扩散性能。KB具有低成本、稳定、电化学性能高等优点,具有大规模生产的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The impact of carbon additives on lithium ion diffusion kinetic of LiFePO4/C composites
Introduction: LiFePO4/C composites were synthesized via physical mixing assisted solvothermal process. Different kinds of carbon materials were investigated including 0D (carbon Ketjen black), 1D (carbon nanotubes) and 2D (graphene) materials. X-rays diffraction patterns of carbon coated LiFePO4 synthesized by solvothermal was indexed to pure crystalline phase without the emergence of second phase. LiFePO4 platelets and rods were in range size of 80-200 nm and dispersed well in carbon matrix. The lithium ion diffusion kinetics was evaluated through the calculated diffusion coefficients to explore the impact of carbon mixing. Methods: In this work, we studied the structure, morphologies and the lithium ion diffusion kinetic of LiFePO4/C composites for Li-ion batteries. Different characterization methods were used including powder X-rays (for crystalline structure); Transmission Electron Microscopy (for particle and morphologies observation) and Cyclic voltammetry (for electrochemical kinetic study). Results: The study indicated LiFePO4/C composites were successfully obtained by mixing process and the electrochemical performance throughout the calculated diffusion coefficient was significantly improved by adding the carbon types. Conclusion: The excellent ion diffusion was obtained for composites LiFePO4/Ketjen black (KB) and LiFePO4/CNT compared to LiFePO4/Graphene. KB could be a potential candidate for large-scale production due to low-cost, stable and high electrochemical performance.  
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