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聚乙二醇掺杂聚苯胺提高了锂硫电池正极的倍率性能。

Polyethylene-glycol-doped polypyrrole increases the rate performance of the cathode in lithium-sulfur batteries.

机构信息

Beijing Key Laboratory of Environmental Science and Engineering, School of Chemical Engineering and Environment, Beijing Institute of Technology, Beijing, 100081 PR China.

出版信息

ChemSusChem. 2013 Aug;6(8):1438-44. doi: 10.1002/cssc.201300260. Epub 2013 Jun 20.

Abstract

Polypyrrole-polyethylene glycol (PPy/PEG)-modified sulfur/aligned carbon nanotubes (PPy/PEG-S/A-CNTs) were synthesized by using an in situ polymerization method. The ratio of PPy to PEG equaled 31.7:1 after polymerization, and the PEG served as a cation dopant in the polymerization and electrochemical reactions. Elemental analysis, FTIR, Raman spectroscopy, XRD, and electrochemical methods were performed to measure the physicochemical properties of the composite. Elemental analysis demonstrated that the sulfur, PPy, PEG, A-CNT, and chloride content in the synthesized material was 64.6%, 22.1%, 0.7%, 12.1%, and 0.5%, respectively. The thickness of the polymer shell was about 15-25 nm, and FTIR confirmed the successful PPy/PEG synthesis. The cathode exhibited a high initial specific capacity of 1355 mAh g(-1) , and a sulfur usage of 81.1%. The reversible capacity of 924 mAh g(-1) was obtained after 100 cycles, showing a remarkably improved cyclability compared to equivalent systems without PEG doping and without any coatings. PPy/PEG provided an effective electronically conductive network and a stable interface structure for the cathode. Rate performance of the PPy/PEG- S/A-CNT composite was more than double that of the unmodified S/A-CNTs. Remarkably, the battery could work at a very high current density of 8 A g(-1) and reached an initial capacity of 542 mAh g(-1) ; it also retained a capacity of 480 mAh g(-1) after 100 cycles. The addition of PEG as a dopant in the PPy shell contributed to this prominent rate improvement. Lithium ions and electrons were available everywhere on the surfaces of the particles, and thus could greatly improve the electrochemical reaction; PEG is a well-known solvent for lithium salts and a very good lithium-ion catcher.

摘要

聚吡咯-聚乙二醇(PPy/PEG)修饰的硫/定向碳纳米管(PPy/PEG-S/A-CNTs)通过原位聚合方法合成。聚合后,PPy 与 PEG 的比例为 31.7:1,PEG 在聚合和电化学反应中作为阳离子掺杂剂。通过元素分析、FTIR、拉曼光谱、XRD 和电化学方法对复合材料的物理化学性质进行了测量。元素分析表明,合成材料中的硫、PPy、PEG、A-CNT 和氯含量分别为 64.6%、22.1%、0.7%、12.1%和 0.5%。聚合物壳的厚度约为 15-25nm,FTIR 证实了 PPy/PEG 的成功合成。阴极具有较高的初始比容量 1355mAhg-1,硫的利用率为 81.1%。经过 100 次循环后,可逆容量为 924mAhg-1,与没有 PEG 掺杂和没有任何涂层的等效系统相比,循环性能得到了显著提高。PPy/PEG 为阴极提供了有效的电子导电网络和稳定的界面结构。PPy/PEG-S/A-CNT 复合材料的倍率性能是未改性 S/A-CNTs 的两倍以上。值得注意的是,该电池可以在非常高的电流密度 8Ag-1下工作,并达到初始容量 542mAhg-1;在 100 次循环后,仍保持 480mAhg-1的容量。在 PPy 壳中添加 PEG 作为掺杂剂有助于显著提高倍率性能。锂离子和电子在颗粒表面的各个地方都可以得到,从而可以大大提高电化学反应的速度;PEG 是一种众所周知的锂盐溶剂,也是一种非常好的锂离子捕获剂。

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