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The development of Li-S batteries (LSBs) is hindered by the low utilization of S species and sluggish redox reaction kinetics. Polar metal oxides always possess high adsorption to polar S species, while conductive metal nitrides show fast electron transport and ensure fast redox reaction of S species. The combination merits of metal oxides and metal nitrides in one provide an effective strategy to improve the electrochemical performance of LSBs. In this work, defect design of niobium oxynitrides highly dispersed on graphene (NbON-G) is evaluated as effective trapper and catalyst for S species. Owning to the effective structural merits including enriched active sites, alleviated volume variation, defect modulated electronic property, and in-situ chemisorption and catalytic conversion of soluble lithium polysulfides (LiPSs), the LSBs with NbON-G modified separator show remarkably enhanced performance compared to NbN-G and Nb2O5-G. Surprisingly, even at low temperature of −40 °C, the LSBs with NbON-G can operate for 1,000 cycles with 0.04% capacity decay per cycle (Rate: 2 C).

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Publication history
Copyright
Acknowledgements

Publication history

Received: 31 December 2021
Revised: 28 February 2022
Accepted: 06 March 2022
Published: 20 April 2022
Issue date: July 2022

Copyright

© Tsinghua University Press 2022

Acknowledgements

Acknowledgements

This research was funded by the National Natural Science Foundation of China (No. 52102296), the Guangzhou Municipal Science and Technology Bureau (No. 202102020055), the Science and Technology Program of Guangzhou (No. 2019050001), Outstanding Youth Project of Guangdong Natural Science Foundation (No. 2021B1515020051), and Yunnan Expert Workstation (No. 202005AF150028).

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