4.7 Article

Separator modified with N,S co-doped mesoporous carbon using egg shell as template for high performance lithium-sulfur batteries

Journal

CHEMICAL ENGINEERING JOURNAL
Volume 320, Issue -, Pages 178-188

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2017.03.022

Keywords

Lithium-sulfur battery; Porous carbon; Egg shell; Separator modification; Adsorption

Funding

  1. National Program on Key Basic Research of China (973 Program) [2015CB258400]
  2. National Thousand Young Talents Program, Natural Science Foundation of China [51508213, 51608217, 21607046]
  3. Key project of Hubei Provincial Natural Science Foundation [2014CFA109]
  4. General program of Natural Science Foundation of Hubei Province [ZRMS2016000433]
  5. Innovative and Interdisciplinary Team at HUST [0118261077]
  6. Independent Innovation Foundation of HUST-Exploration Fund [2016YXMS288, 2014TS092]

Ask authors/readers for more resources

The migration of long chain soluble lithium polysulfides through the separator to the anode, the so called shuttle effect, is one of the major issues responsible for the capacity degradation of lithium-sulfur (Li-S) batteries. In this work, N and S co-doped mesoporous carbon was prepared by a novel egg shell template method and utilized to modify the separator for high performance Li-S batteries. The discharge capacity of the second cycle retained at 1467 mAh g(-1) at 1 C after 200 cycles and decayed at 0.20% per charge discharge cycle, and a reversible capacity of 561 mAh g(-1) was achieved even at 5 C rate after 200 cycles. The prepared material showed a porous hollow sphere morphology with larger surface area and N and S co-doped that can provide great electrochemical property as well as surface chemistry for the adsorption of the intermediate polysulfides. After separator modification, XPS analysis revealed that pyrrolic-type N, pyridinic-like N, and thiosulphate were the major factors contributing to the superior electrochemical performance of the CS/S cathode. This work also provided a rational design strategy for the modification of separator to effectively utilize the active sulfur and to retard the migration of dissolved polysulfides, which enhanced the performance of high energy density Li-S batteries with long cycling life. (C) 2017 Elsevier B.V. All rights reserved.

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