TY - JOUR
T1 - Advanced Separator Enabled by Sulfur Defect Engineering for High-Performance Lithium-Sulfur Batteries
AU - Gao, Yangchen
AU - Bai, Yu
AU - Sun, Rui
AU - Qu, Meixiu
AU - Wang, Mengyuan
AU - Peng, Lin
AU - Wang, Zhenhua
AU - Sun, Wang
AU - Sun, Kening
N1 - Publisher Copyright:
© 2022 American Chemical Society. All rights reserved.
PY - 2022/5/25
Y1 - 2022/5/25
N2 - A rechargeable lithium-sulfur (Li-S) battery is being pursued as a promising candidate for future energy storage and conversion because of its theoretical high energy density and low cost. However, commercial application of Li-S batteries is critically impeded by their notorious shuttle effect and the sluggish conversion kinetics. In this work, we proposed a strategy to enhance the surface adsorption and the conversion of lithium polysulfides with the construction and concentration regulation of sulfur defects in MoS2nanosheets. The MoS2with relatively rich sulfur vacancies (MoS2-x-500°C) delivers significantly enhanced immobilization and accelerated conversion of polysulfides. Due to these beneficial effects, the Li-S battery with the MoS2-x-500°C-modified separator delivers a superb initial specific capacity of 961 mA h g-1at 1 C and the cycling stability with only 0.088% decay per cycle during 300 cycles. Even at the relatively high sulfur loading of 7 mg cm-2, the cell still displays a satisfactory areal capacity of 5.18 mA h cm-2at 0.2 C. The strategy of sulfur defect engineering proposed in this work has been proven to be a simple but efficient way for constructing high-performance Li-S batteries.
AB - A rechargeable lithium-sulfur (Li-S) battery is being pursued as a promising candidate for future energy storage and conversion because of its theoretical high energy density and low cost. However, commercial application of Li-S batteries is critically impeded by their notorious shuttle effect and the sluggish conversion kinetics. In this work, we proposed a strategy to enhance the surface adsorption and the conversion of lithium polysulfides with the construction and concentration regulation of sulfur defects in MoS2nanosheets. The MoS2with relatively rich sulfur vacancies (MoS2-x-500°C) delivers significantly enhanced immobilization and accelerated conversion of polysulfides. Due to these beneficial effects, the Li-S battery with the MoS2-x-500°C-modified separator delivers a superb initial specific capacity of 961 mA h g-1at 1 C and the cycling stability with only 0.088% decay per cycle during 300 cycles. Even at the relatively high sulfur loading of 7 mg cm-2, the cell still displays a satisfactory areal capacity of 5.18 mA h cm-2at 0.2 C. The strategy of sulfur defect engineering proposed in this work has been proven to be a simple but efficient way for constructing high-performance Li-S batteries.
UR - http://www.scopus.com/inward/record.url?scp=85131037654&partnerID=8YFLogxK
U2 - 10.1021/acs.iecr.2c00634
DO - 10.1021/acs.iecr.2c00634
M3 - Article
AN - SCOPUS:85131037654
SN - 0888-5885
VL - 61
SP - 6957
EP - 6966
JO - Industrial and Engineering Chemistry Research
JF - Industrial and Engineering Chemistry Research
IS - 20
ER -