分离器(采油)
法拉第效率
材料科学
化学工程
三元运算
石墨烯
电解质
氧化物
锂硫电池
多硫化物
Nafion公司
无机化学
电化学
化学
纳米技术
电极
冶金
物理
工程类
热力学
物理化学
计算机科学
程序设计语言
作者
Ting‐Zhou Zhuang,Jia‐Qi Huang,Hong‐Jie Peng,Lian‐Yuan He,Xin‐Bing Cheng,Cheng‐Meng Chen,Qiang Zhang
出处
期刊:Small
[Wiley]
日期:2015-12-07
卷期号:12 (3): 381-389
被引量:331
标识
DOI:10.1002/smll.201503133
摘要
The reversible electrochemical transformation from lithium (Li) and sulfur (S) into Li 2 S through multielectron reactions can be utilized in secondary Li–S batteries with very high energy density. However, both the low Coulombic efficiency and severe capacity degradation limits the full utilization of active sulfur, which hinders the practical applications of Li–S battery system. The present study reports a ternary‐layered separator with a macroporous polypropylene (PP) matrix layer, graphene oxide (GO) barrier layer, and Nafion retarding layer as the separator for Li–S batteries with high Coulombic efficiency and superior cyclic stability. In the ternary‐layered separator, ultrathin layer of GO (0.0032 mg cm −2 , estimated to be around 40 layers) blocks the macropores of PP matrix, and a dense ion selective Nafion layer with a very low loading amount of 0.05 mg cm −2 is attached as a retarding layer to suppress the crossover of sulfur‐containing species. The ternary‐layered separators are effective in improving the initial capacity and the Coulombic efficiency of Li–S cells from 969 to 1057 mAh g −1 , and from 80% to over 95% with an LiNO 3 ‐free electrolyte, respectively. The capacity degradation is reduced from 0.34% to 0.18% per cycle within 200 cycles when the PP separator is replaced by the ternary‐layered separators. This work provides the rational design strategy for multifunctional separators at cell scale to effective utilizing of active sulfur and retarding of polysulfides, which offers the possibility of high energy density Li–S cells with long cycling life.
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