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Improved electrochemical performance of LiFe0.4Mn0.6PO4/C with Cr3+ doping

机译:Cr 3 + 掺杂改善LiFe 0.4 Mn 0.6 PO 4 / C的电化学性能

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摘要

LiFe0.4Mn0.6?xCrxPO4/C (x ≤ 0.01) cathode materials with different Cr-doping were synthesized by a nano-milling assisted solid-state method. The experimental results demonstrated that Cr-doping can significantly improve the electrochemical performance of the target material. Among the samples synthesized, the LiFe0.4Mn0.595Cr0.005PO4/C (with 0.5 atm% of Cr) sample exhibited the highest specific capacity and the best rate performance. It delivered initial discharge capacities of 164.0, 156.2, 147.5 and 139.3 mA h g?1 at 0.1C, 0.5C, 2C and 5C, respectively. Moreover, it showed the best cycle stability with capacity retention of 99.2% after 50 cycles at 0.1C. Such enhancement can be ascribed to the improvements in not only the electronic conductivity, but also the Li ion diffusion coefficient. Powder conductivity tests revealed that the conductivity of the powder sample with 0.5% Cr doping presents the highest conductivity of 5.91 × 10?5 S cm?1, which is almost 5.3 times that of the pristine sample. Calculations of diffusion coefficients using the EIS data also suggested a highest Li ion diffusion coefficient of 4.36 × 10?10 cm2 s?1 for the sample with 0.5% Cr doping, which is almost 4.6 times that of the pristine sample. The synthesized LiFe0.4Mn0.595Cr0.005PO4/C with such excellent electrochemical performance showed great potential for application in high-power devices.
机译:LiFe 0.4 Mn 0.6? x Cr x PO 4 / C( x ≤0.01)/ Cr阴极材料通过纳米研磨辅助固态方法合成了掺杂。实验结果表明,Cr掺杂可以显着提高靶材的电化学性能。在合成样品中,LiFe 0.4 Mn 0.595 Cr 0.005 PO 4 / C(含0.5 atm%的Cr)样品显示出最高的比容量和最佳的速率性能。它在0.1C,0.5C,2C和5C时的初始放电容量分别为164.0、156.2、147.5和139.3 mA h g ?1 。而且,它显示出最佳的循环稳定性,在0.1C下50次循环后容量保持率为99.2%。这种增强不仅可以归因于电子传导性的改善,而且可以归因于锂离子扩散系数的改善。粉末电导率测试表明,0.5%Cr掺杂的粉末样品的电导率最高,为5.91×10 ?5 S cm ?1 ,几乎是原始样本的5.3倍。使用EIS数据计算的扩散系数还表明,锂离子的最高扩散系数为4.36×10 ?10 cm 2 s ?1 对于0.5%Cr掺杂的样品,几乎是原始样品的4.6倍。合成的LiFe 0.4 Mn 0.595 Cr 0.005 具有如此优异的电化学性能的PO 4 / C具有广阔的应用前景。

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