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A relation between enhanced Li ion transfer and the improvement in electrochemical performance of a Si-Cu-carbon composite

机译:锂离子迁移增强与Si-Cu-碳复合材料电化学性能改善之间的关系

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Si-carbon composite prepared by mechanical milling showed good cyclic capacity retention until the utilization of Si was limited below 32 percent, whereas the retention of a Si-Cu-carbon composite obtained by two-step mechanical milling was maintained up to 55 percent. A comparison between the first charge curves of a Si-carbon composite and a Si-Cu-carbon composite at 0.1 C, indicated that the Si-carbon composite underwent a much higher polarization than the Si-Cu-carbon composite, leading to the difference in utilization of Si, Impedance spectroscopy let us confirm that the electrochemical alloying between Si and Li~+ is much easier in the Si-Cu-carbon composite than in the Si-carbon composite. The superiority of the Si-Cu-carbon composite in kinetics enabled its electrode to have a more homogeneous Li~+ concentration after Li~+ insertion. Because this phenomenon means that the Si-Cu-carbon composite has a more homogeneous volume expansion than the Si-carbon composite, the disparity in electrochemical performance between the Si-carbon composite and the Si-Cu-carbon composite was attributed to enhanced Li~+ transfer in the Si-Cu-carbon composite.
机译:通过机械研磨制备的Si-碳复合材料显示出良好的循环容量保持率,直到将Si的利用率限制在32%以下为止,而通过两步机械研磨获得的Si-Cu-碳复合材料的保留率则保持高达55%。硅碳复合材料和硅铜碳复合材料在0.1 C时的第一充电曲线的比较表明,硅碳复合材料的极化比硅铜碳复合材料高得多,导致两者之间的差异。在利用硅的过程中,阻抗谱使我们确认,硅与锂〜之间的电化学合金化比硅碳复合物中的Si-Cu-碳复合物容易得多。 Si-Cu-碳复合材料在动力学方面的优越性使其电极在插入Li〜+之后具有更均匀的Li〜+浓度。因为这种现象意味着Si-Cu-碳复合材料比Si-碳复合材料具有更均匀的体积膨胀,所以Si-碳复合材料和Si-Cu-碳复合材料之间电化学性能的差异归因于Li〜 +在Si-Cu-碳复合物中的转移。

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