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Long cycle life of CoMn2O4 lithium ion battery anodes with high crystallinity

机译:高结晶度的CoMn2O4锂离子电池负极的循环寿命长

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摘要

CoMn2O4 nanomaterials are prepared by a low temperature precipitation route employing metal acetates and NaOH. Structural changes, induced by different annealing temperatures, are comprehensively analyzed by X-ray powder diffraction and Raman spectroscopy. With rising annealing temperature the crystal lattice of CoMn2O4 undergoes changes ; AO4 tetrahedra expand due to thermally induced substitution of Co2+ by larger Mn2+ metal ions on the A-site of the spinel structure, while in contrast, BO6 octahedra shrink since the B-site becomes partially occupied by smaller Co3+ metal ions on account of the migrated Mn ions. CoMn2O4 particle sizes are easily fine-tuned by applying different annealing temperatures ; the particle size increases with increasing annealing temperature. During the battery operation, pulverization and reduction of particle sizes occurs regardless of the initial size of the particles, but the degree of division of the particles during the operation is dependent on the initial particle properties. Thus, contrary to the common assumption that nanostructuring of the anode material improves the battery performance, samples with the largest particle sizes exhibit excellent performance with a capacity retention of 104% after 1000 cycles (compared to the 2nd cycle).
机译:CoMn2O4纳米材料是通过采用金属乙酸盐和NaOH的低温沉淀法制备的。通过X射线粉末衍射和拉曼光谱对由不同退火温度引起的结构变化进行了综合分析。随着退火温度的升高,CoMn2O4的晶格发生变化; AO4四面体膨胀是由于尖晶石结构A位置上较大的Mn2 +金属离子对Co2 +的热诱导取代引起的,而相比之下,BO6八面体会收缩,因为B位置由于迁移而被较小的Co3 +金属离子部分占据锰离子。通过应用不同的退火温度,可以轻松地微调CoMn2O4的粒径;粒度随着退火温度的升高而增加。在电池操作期间,无论颗粒的初始尺寸如何,都会发生粉碎和粒径减小,但是操作期间颗粒的分裂程度取决于初始颗粒性质。因此,与通常的假设相反,负极材料的纳米结构改善了电池性能,具有最大粒径的样品表现出出色的性能,在1000次循环后(与第二次循环相比)的容量保持率为104%。

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