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Empowering Low-Temperature Lithium-Sulfur Batteries: Unlocking the Potential of Transition Metal Alloy-Based Cathode Materials.

Junye ShiNimra KhanNing GaoChenxi YuBao LiBao WangShumin Zheng
Published in: ACS applied materials & interfaces (2024)
At low temperatures, lithium-sulfur (Li-S) batteries have poor kinetics, resulting in extreme polarization and decreased capacity. In this study, we investigated the electrochemical performance of Li-S batteries utilizing transition metal alloy-based cathode materials. Specifically, binary transition metal alloys (FeNi, FeCo, and NiCo) are integrated into a porous carbon nanofiber (CNF) matrix as composite cathode material. Our findings reveal that alloying metallic Ni with Fe in the FeNi@CNFs composite enhances the catalytic conversion of sulfur species, mitigating the shuttle effect and improving battery performance even under low temperatures. Li-S batteries employing a Li 2 S 6 /FeNi@CNFs cathode exhibited a significantly high initial discharge capacity of 1655 mAh g -1 at 0.1 C. Even at the higher current density of 10 C, the Li 2 S 6 /FeNi@CNFs composite can still reach an ultrahigh specific capacity of 828 mAh g -1 . In addition, Li 2 S 6 /FeNi@CNFs demonstrated exceptional initial discharge capacities of 890.5 and 382.7 mAh g -1 at 0.1 C under -20 and -40 °C, respectively. With an initial capacity of 392.02 mAh g -1 and a capacity retention rate of 88.86% (after 60 cycles) at 0.2 C, the conversion of LiPSs in Li 2 S 6 /FeNi@CNFs is significantly enhanced even at ultralow temperatures of -40 °C. The findings of this study hold significant implications for the advancement of extremely low-temperature Li-S batteries.
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