多硫化物
硫黄
材料科学
电解质
溶解
石墨烯
纳米复合材料
化学工程
油胺
锂(药物)
氧化物
纳米颗粒
电极
纳米技术
化学
冶金
物理化学
内分泌学
工程类
医学
作者
Jungjin Park,Eui‐Tae Kim,Chunjoong Kim,Jeffrey Pyun,Hyungseok Jang,Jaeho Shin,Jang Wook Choi,Kookheon Char,Yung‐Eun Sung
标识
DOI:10.1002/aenm.201700074
摘要
Abstract Polysulfide dissolution into the electrolyte and poor electric conductivity of elemental sulfur are well‐known origins for capacity fading in lithium–sulfur batteries. Various smart electrode designs have lately been introduced to avoid these fading mechanisms, most of which demonstrate significantly improved cycle life. Nevertheless, an in‐depth understanding on the effect of sulfur microstructure and nanoscale electron transport near sulfur is currently lacking. In this study, the authors report an organized nanocomposite comprising linear sulfur chains and oleylamine‐functionalized reduced graphene oxide ( O ‐rGO) to achieve robust cycling performance (81.7% retention after 500 cycles) as well as to investigate the reaction mechanism in different regimes, i.e., S 8 dissolution, polysulfide conversion, and Li 2 S formation. In the nanocomposite, linear sulfur chains terminate with 1,3‐diisopropylbenzene are covalently linked to O ‐rGO. The comparison with control samples that do not contain either the capping of sulfur chains or O ‐rGO reveals the synergistic interplay between both treatments, simultaneously unveiling the distinct roles of confined sulfur nanodomains and their adjoining electron pathways in different reaction regimes.
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