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电子型纯度对单壁碳纳米管锂化的影响。

Influence of electronic type purity on the lithiation of single-walled carbon nanotubes.

机构信息

Department of Materials Science and Engineering, Northwestern University , Evanston, Illinois 60208, United States.

出版信息

ACS Nano. 2014 Mar 25;8(3):2399-409. doi: 10.1021/nn405921t. Epub 2014 Feb 12.

Abstract

Single-walled carbon nanotubes (SWCNTs) have emerged as one of the leading additives for high-capacity nanocomposite lithium ion battery electrodes due to their ability to improve electrode conductivity, current collection efficiency, and charge/discharge rate for high power applications. However, since as-grown SWCNTs possess a distribution of physical and electronic structures, it is of high interest to determine which subpopulations of SWCNTs possess the highest lithiation capacity and to develop processing methods that can enhance the lithiation capacity of underperforming SWCNT species. Toward this end, SWCNT electronic type purity is controlled via density gradient ultracentrifugation, enabling a systematic study of the lithiation of SWCNTs as a function of metal versus semiconducting content. Experimentally, vacuum-filtered freestanding films of metallic SWCNTs are found to accommodate lithium with an order of magnitude higher capacity than their semiconducting counterparts, which is consistent with ab initio molecular dynamics and density functional theory calculations in the limit of isolated SWCNTs. In contrast, SWCNT film densification leads to the enhancement of the lithiation capacity of semiconducting SWCNTs to levels comparable to metallic SWCNTs, which is corroborated by theoretical calculations that show increased lithiation of semiconducting SWCNTs in the limit of small SWCNT-SWCNT spacing. Overall, these results will inform ongoing efforts to utilize SWCNTs as conductive additives in nanocomposite lithium ion battery electrodes.

摘要

单壁碳纳米管(SWCNTs)由于其能够提高电极导电性、电流收集效率和高功率应用的充放电速率,已成为高容量纳米复合锂离子电池电极的主要添加剂之一。然而,由于原始生长的 SWCNTs 具有多种物理和电子结构,因此确定哪些 SWCNT 亚群具有最高的锂化容量以及开发能够增强性能较差的 SWCNT 种类的锂化容量的处理方法非常重要。为此,通过密度梯度超速离心控制 SWCNT 的电子类型纯度,从而可以系统地研究 SWCNT 的锂化作为金属与半导体含量的函数。实验上,发现真空过滤的金属 SWCNT 自支撑膜的锂化容量比其半导体对应物高一个数量级,这与孤立 SWCNT 的从头算分子动力学和密度泛函理论计算一致。相比之下,SWCNT 薄膜致密化导致半导体 SWCNT 的锂化容量增强到与金属 SWCNT 相当的水平,这得到了理论计算的证实,表明在 SWCNT-SWCNT 间距较小的极限下,半导体 SWCNT 的锂化程度增加。总体而言,这些结果将为利用 SWCNTs 作为纳米复合锂离子电池电极的导电添加剂提供信息。

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