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掺杂金属离子的钛酸锂锌作为锂离子电池负极材料的表征

Characterization of lithium zinc titanate doped with metal ions as anode materials for lithium ion batteries.

作者信息

Tang Haoqing, Song Yaoming, Zan Lingxing, Yue Yizhi, Dou Di, Song Yike, Wang Miao, Liu Xiaotong, Liu Tao, Tang Zhiyuan

机构信息

School of Materials Science and Engineering, Hebei University of Engineering, Handan, Hebei 056038, PR China.

出版信息

Dalton Trans. 2021 Mar 7;50(9):3356-3368. doi: 10.1039/d0dt04073h. Epub 2021 Feb 17.

Abstract

With the aim of improving the ionic and electronic conductivities of LiZnTiO for high performance lithium ion battery applications, LiZnMTiO (M = Li, Cu, Al, Ti, Nb, Mo) compounds are successfully fabricated using facile high temperature calcination at 800 °C. Physical characterization and lithium ion reversible storage demonstrate that Zn-site substitution by multivalent metal ions is beneficial for improving the migration rate of ions and electrons of LiZnTiO. X-ray diffraction analysis and scanning electron microscopy reveal that the crystal structure and microscopic morphology of bare LiZnTiO do not change by introducing a small amount of foreign metal ions. As a result, LiZnNbTiO retains a reversible capacity as high as 198 mA h g at the end of the 500th cycle among all samples. Even when cycled at high temperatures, LiZnNbTiO still maintains excellent reversible discharge capacities of 210 mA h g and 196 mA h g at 1000 mA g for the 100th cycle at 50 °C and 60 °C, respectively. All the conclusions indicate that LiZnNbTiO is a high-performance anode material for large-scale energy storage devices.

摘要

为了提高用于高性能锂离子电池的LiZnTiO的离子和电子电导率,采用在800°C下简便的高温煅烧方法成功制备了LiZnMTiO(M = Li、Cu、Al、Ti、Nb、Mo)化合物。物理表征和锂离子可逆存储表明,用多价金属离子取代锌位点有利于提高LiZnTiO的离子和电子迁移速率。X射线衍射分析和扫描电子显微镜显示,引入少量外来金属离子不会改变纯LiZnTiO的晶体结构和微观形态。结果,在所有样品中,LiZnNbTiO在第500次循环结束时仍保持高达198 mA h g的可逆容量。即使在高温下循环,LiZnNbTiO在50°C和60°C下分别以1000 mA g的电流进行第100次循环时,仍分别保持210 mA h g和196 mA h g的优异可逆放电容量。所有这些结论表明,LiZnNbTiO是用于大规模储能装置的高性能负极材料。

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