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Improved lithium insertion/extraction properties of single-walled carbon nanotubes by high-energy ball milling

机译:通过高能球磨改善单壁碳纳米管的锂插入/萃取性能

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摘要

The effects of ball milling on lithium (Li) insertion/extraction properties into/from single-walled carbon nanotubes (SWNTs) were investigated. The SWNTs were synthesized on supported catalysts by thermal chemical-vapor deposition method, purified, and mechanically ball-milled by high-energy ball milling. The purified SWNTs and the ball-milled SWNTs were electrochemically inserted/extracted with Li. The structural and chemical modifications in the ball-milled SWNTs change the insertion/extraction properties of Li ions into/from the ball-milled SWNTs. The reversible capacity (C_(rev)) increases with increase in the ball milling time, from 616 mAh/g (Li_(1.7)C_6) for the purified SWNTs to 988 mAh/g (Li_(2.7)C_6) for the ball-milled SWNTs. The undesirable irreversible capacity (C_(irr)) decreases continuously with increase in the ball milling time, from 1573 mAh/g (Li_(4.2)C_6) for the purified SWNTs to 845 mAh/g (Li_(2.3)C_6) for the ball-milled SWNTs. The enhanced C_(rev) of the ball-milled SWNTs is presumably due to a continuous decrease in the C_(irr) because the SWNTs develop a densely packed structure on the ball milling process. The insertion of Li ions into the ball-milled SWNTs is facilitated by various Li insertion sites formed during the ball milling process in spite of small surface area than the purified SWNTs. Lithium ions inserted into various insertion sites enhance the C_(rev) in the ball-milled SWNTs with the large voltage hysteresis by hindrance of the extraction of Li ions from the ball-milled SWNTs. In addition, the ball-milled samples exhibit more stable cycle capacities than the purified samples during the charge/discharge cycling.
机译:研究了球磨对单壁碳纳米管(SWNTs)中锂(Li)插入/提取性能的影响。通过热化学气相沉积法在负载型催化剂上合成单壁碳纳米管,进行纯化,然后通过高能球磨进行机械球磨。将纯化的SWNT和球磨的SWNT用Li电化学插入/提取。球磨SWNT中的结构和化学修饰改变了锂离子向球磨SWNT中的插入/抽出特性。可逆容量(C_(rev))随着球磨时间的增加而增加,从纯化的SWNT的616 mAh / g(Li_(1.7)C_6)到球磨的988 mAh / g(Li_(2.7)C_6)。磨碎的单壁碳纳米管。随着球磨时间的增加,不良的不可逆容量(C_(irr))不断降低,从纯化的SWNT的1573 mAh / g(Li_(4.2)C_6)降至球磨的845 mAh / g(Li_(2.3)C_6)。球磨单壁碳纳米管。球磨的单壁碳纳米管的增强的C_(rev)可能是由于C_(irr)的持续降低,因为单壁碳纳米管在球磨过程中形成了紧密堆积的结构。尽管表面积比纯化的单壁碳纳米管小,但通过球磨过程中形成的各种锂插入位点,仍可将锂离子插入到球磨的单壁碳纳米管中。通过阻碍从球磨SWNT中提取锂离子,插入到各个插入位置的锂离子以较大的电压滞后性增强了球磨SWNT中的C_(rev)。另外,在充电/放电循环期间,球磨过的样品表现出比纯化的样品更稳定的循环能力。

著录项

  • 来源
    《Journal of Materials Research》 |2008年第9期|2458-2466|共9页
  • 作者

    JiYong Eom; HyukSang Kwon;

  • 作者单位
  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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