TY - JOUR
T1 - Recyclable cobalt-molybdenum bimetallic carbide modified separator boosts the polysulfide adsorption-catalysis of lithium sulfur battery
AU - Zhang, Ze
AU - Wang, Jia-Nan
AU - Shao, A.-Hu
AU - Xiong, Dong-Gen
AU - Liu, Jian-Wei
AU - Lao, Cheng-Yen
AU - Xi, Kai
AU - Lu, Shi-Yao
AU - Jiang, Qiu
AU - Yu, Ji
AU - Li, Huang-Long
AU - Yang, Zhen-Yu
AU - Kumar, R. Vasant
PY - 2020/12
Y1 - 2020/12
N2 - The polysulfide shuttling and sluggish redox kinetics, due to the notorious adsorption-catalysis underperformance, are the ultimate obstacles of the practical application of lithium-sulfur (Li-S) batteries. Conventional carbon-based and transition metal compound-based material solutions generally suffer from poor catalysis and adsorption, respectively, despite the performance gain in terms of the other. Herein, we have enhanced polysulfide adsorption-catalytic capability and protected the Li anode using a complementary bimetallic carbide electrocatalyst, Co3Mo3C, modified commercial separator. With this demonstration, the potentials of bimetal compounds, which have been well recognized in other environmental catalysis, are also extended to Li-S batteries. Coupled with this modified separator, a simple cathode (S/Super P composite) can deliver high sulfur utilization, high rate performance, and excellent cycle stability with a low capacity decay rate of ∼0.034% per cycle at 1 C up to 1000 cycles. Even at a high S-loading of 8.0 mg cm−2 with electrolyte/sulfur ratio=6 mL g−1, the cathode still exhibits high areal capacity of ∼6.8 mA h cm−2. The experimental analysis and the first principles calculations proved that the bimetallic carbide Co3Mo3C provides more binding sites for adsorbing polysulfides and catalyzing the multiphase conversion of sulfur/polysulfide/sulfide than monometallic carbide Mo2C. Moreover, the modified separator can be reutilized with comparable electrochemical performance. We also showed other bimetallic carbides with similar catalytic effects on Li S batteries and this material family has great promise in different energy electrocatalytic systems.
AB - The polysulfide shuttling and sluggish redox kinetics, due to the notorious adsorption-catalysis underperformance, are the ultimate obstacles of the practical application of lithium-sulfur (Li-S) batteries. Conventional carbon-based and transition metal compound-based material solutions generally suffer from poor catalysis and adsorption, respectively, despite the performance gain in terms of the other. Herein, we have enhanced polysulfide adsorption-catalytic capability and protected the Li anode using a complementary bimetallic carbide electrocatalyst, Co3Mo3C, modified commercial separator. With this demonstration, the potentials of bimetal compounds, which have been well recognized in other environmental catalysis, are also extended to Li-S batteries. Coupled with this modified separator, a simple cathode (S/Super P composite) can deliver high sulfur utilization, high rate performance, and excellent cycle stability with a low capacity decay rate of ∼0.034% per cycle at 1 C up to 1000 cycles. Even at a high S-loading of 8.0 mg cm−2 with electrolyte/sulfur ratio=6 mL g−1, the cathode still exhibits high areal capacity of ∼6.8 mA h cm−2. The experimental analysis and the first principles calculations proved that the bimetallic carbide Co3Mo3C provides more binding sites for adsorbing polysulfides and catalyzing the multiphase conversion of sulfur/polysulfide/sulfide than monometallic carbide Mo2C. Moreover, the modified separator can be reutilized with comparable electrochemical performance. We also showed other bimetallic carbides with similar catalytic effects on Li S batteries and this material family has great promise in different energy electrocatalytic systems.
KW - bimetallic carbides
KW - electrocatalysts
KW - lithium-sulfur batteries
KW - modified separators
KW - polysulfide adsorption-catalysis
KW - bimetallic carbides
KW - electrocatalysts
KW - lithium-sulfur batteries
KW - modified separators
KW - polysulfide adsorption-catalysis
KW - bimetallic carbides
KW - electrocatalysts
KW - lithium-sulfur batteries
KW - modified separators
KW - polysulfide adsorption-catalysis
UR - http://www.scopus.com/inward/record.url?scp=85089566045&partnerID=8YFLogxK
UR - https://www.scopus.com/record/pubmetrics.uri?eid=2-s2.0-85089566045&origin=recordpage
U2 - 10.1007/s40843-020-1425-2
DO - 10.1007/s40843-020-1425-2
M3 - RGC 21 - Publication in refereed journal
SN - 2095-8226
VL - 63
SP - 2443
EP - 2455
JO - Science China Materials
JF - Science China Materials
IS - 12
ER -