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The low and high temperature electrochemical performance of Li3VO4/C anode material for Li-ion batteries

机译:锂离子电池用Li3VO4 / C负极材料的低温和高温电化学性能

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摘要

The carbon-coated Li3VO4 (Li3VO4/C) sample was synthesized by simple solid-state reaction method using glucose as carbon source. Rietveld refinement, XPS and element analysis results show that, though it is synthesized in the presence of carbon and reducing atmosphere, both the single-phase Li3VO4/C and the valence of vanadium of +5 can be retained. The SEM and TEM images reveal that Li3VO4/C composite has uniform particles with size less than 1 mu m. Electrochemical testing results show that Li3VO4/C at high operation temperatures holds both higher specific capacity and cyclic performance than that of low temperatures. The initial discharge capacities for the Li3VO4/C electrodes at temperatures of -20, 0, 25 and 50 degrees C are 312, 600, 760 and 721 mAh g(-1) with the coulombic efficiency of 40.45%, 72.09%, 74.34% and 73.41%, respectively. Even at a high discharge/charge rate of 15 C, the capacities of the Li3VO4/C electrodes at -20, 0, 25 and 50 degrees C still can retain about 20, 120, 370 and 450 mAh g(-1), respectively. The CV results demonstrate that the higher operation temperature can decrease the voltage polarization of the electrode, thus benefit the electrochemical performance of the Li3VO4/C electrode. In addition, the EIS results indicate that larger charge-transfer resistance and smaller lithium diffusion coefficient can be obtained at low operation temperatures, which should be one of the major reasons for its poor low-temperature performance of the Li3VO4/C electrode. (C) 2015 Elsevier B.V. All rights reserved.
机译:以葡萄糖为碳源,通过简单的固相反应法合成了碳包覆的Li3VO4(Li3VO4 / C)样品。 Rietveld精炼,XPS和元素分析结果表明,尽管它是在碳和还原气氛下合成的,但单相Li3VO4 / C和+5的钒价均可以保留。 SEM和TEM图像显示Li3VO4 / C复合材料具有均匀的颗粒,尺寸小于1微米。电化学测试结果表明,与低温相比,在高工作温度下的Li3VO4 / C具有更高的比容量和循环性能。 Li3VO4 / C电极在-20、0、25和50摄氏度的温度下的初始放电容量为312、600、760和721 mAh g(-1),库仑效率分别为40.45%,72.09%,74.34%和73.41%。即使在15 C的高放电/充电速率下,Li3VO4 / C电极在-20、0、25和50摄氏度时的容量仍可以分别保持约20、120、370和450 mAh g(-1)。 。 CV结果表明,较高的工作温度可以降低电极的电压极化,从而有利于Li3VO4 / C电极的电化学性能。此外,EIS结果表明,在较低的工作温度下可以获得较大的电荷转移电阻和较小的锂扩散系数,这应该是Li3VO4 / C电极低温性能差的主要原因之一。 (C)2015 Elsevier B.V.保留所有权利。

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