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An in situ method of creating metal oxide-carbon composites and their application as anode materials for lithium-ion batteries

机译:金属氧化物-碳复合材料的原位制备方法及其在锂离子电池负极材料中的应用

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摘要

Transition metal oxides are actively investigated as anode materials for lithium-ion batteries (LIBs), and their nanocomposites with carbon frequently show better performance in galvanostatic cycling studies, compared to the pristine metal oxide. An in situ, scalable method for creating a variety of transition metal oxide-carbon nanocomposites has been developed based on free-radical polymerization and cross-linking of poly(acrylonitrile) in the presence of the metal oxide precursor containing vinyl groups. The approach yields a cross-linked polymer network, which uniformly incorporates nanometre-sized transition metal oxide particles. Thermal treatment of the organic-inorganic hybrid material produces nearly monodisperse metal oxide nanoparticles uniformly embedded in a porous carbon matrix. Cyclic voltammetry and galvanostatic cycling electrochemical measurements in a lithium half-cell are used to evaluate the electrochemical properties of a Fe3O4-carbon composite created using this approach. These measurements reveal that when used as the anode in a lithium battery, the material exhibits stable cycling performance at both low and high current densities. We further show that the polymeranoparticle copoly-merization approach can be readily adapted to synthesize metal oxide/carbon nanocomposites based on different particle chemistries for applications in both the anode and cathode of LIBs.
机译:过渡金属氧化物已被积极研究为锂离子电池(LIB)的负极材料,与原始金属氧化物相比,它们与碳的纳米复合材料在恒电流循环研究中通常表现出更好的性能。在包含乙烯基的金属氧化物前体的存在下,基于自由基聚合和聚(丙烯腈)的交联,已经开发了一种原位,可扩展的方法来制备各种过渡金属氧化物-碳纳米复合材料。该方法产生了交联的聚合物网络,该网络均匀地结合了纳米级的过渡金属氧化物颗粒。有机-无机杂化材料的热处理会产生几乎单分散的金属氧化物纳米颗粒,均匀地嵌入多孔碳基质中。锂半电池中的循环伏安法和恒电流循环电化学测量用于评估使用此方法创建的Fe3O4-碳复合材料的电化学性能。这些测量表明,当用作锂电池的阳极时,该材料在低电流密度和高电流密度下均表现出稳定的循环性能。我们进一步表明,基于LIB阳极和阴极中应用的不同粒子化学,聚合物/纳米粒子共聚方法很容易适应于合成金属氧化物/碳纳米复合材料。

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