研究了一种新型制备锂离子电池正极材料Li1+xV3O8的工艺方法.以NH4VO3为原料,通过淬火法制备出V2O5溶胶,加入LiOH溶液后,通过喷雾干燥法制备球形前驱体,再通过一定的热处理即制得锂离子电池正极材料Li1+xV3O8.试验中,进行了前驱体的DTA/TGA分析;对产物进行了XRD、SEM及电化学性能测试研究.结果表明,经过350℃热处理24h后得到的样品颗粒细小、呈球形、粒径分布均匀、结晶度好,并且还表现出很好的电化学性能,其首次放电比容量高达378mAh·g-1,经过10次充放电循环后,其放电比容量为312mAh·g-1.
A novel technique was studied to prepare Li1+xV3O8 as cathode material for lithium secondary
batteries. V2O5 sol was prepared via a “quencher” method by NH4VO3 as raw material. Then it was mixed with LiOH solution. The spherical precursor
was obtained by a spray drying method. The Li1+xV3O8 powders were synthesized by sintering the spherical precursor. DTA/TGA were
employed to analyze the precursor. The investigation of XRD, SEM and the determination of the electrochemical properties show the
particles obtained by sintering at 350℃ for 24h are fine, spherical, narrowly distributed and well crystallized. The resultant
material also has excellent electrochemical properties with an initial discharge specific capacity of 378 mAh·g-1, and the discharge
specific capacity of the 10th cycle is 312mAh·g-1.
参考文献
[1] | Gao Y, Richard M N, Dahn J R. J. Electrochem. Soc., 1994, 51: 79--82. [2] Zhang X, Frech R. Electrochimica Acta, 1998, 43: 861--868. [3] Kawakita J, Miuea T, Kishi T. Solid State Ionics, 1999, 118: 141--147. [4] Pistoia G, Pasquali M, Geronov Y, et al. J. Power Sources, 1989, 27: 35--43. [5] Kumagai N, Yu A. J. Electrochem. Soc., 1997, 144: 830--835. [6] West K, Christiansen B, Ostergard M J L, et al. J. Power Sources, 1987, 20: 165--172. [7] Manev V, Mochilov A, Nassalevska A, et al. J. Power Sources, 1995, 54: 501--506. [8] 应皆荣, 张国昀, 姜长印, 等. 功能材料, 2001, 32: 234--236. [9] Kawakita J, Miuea T, Kishi T. Solid State Ionics, 1999, 120: 109--116. |
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