Strong Chemical Interaction between Lithium Polysulfides and Flame‐Retardant Polyphosphazene for Lithium–Sulfur Batteries with Enhanced Safety and Electrochemical Performance

The shuttle effect of lithium polysulfides (LiPS) and potential safety hazard caused by the burning of flammable organic electrolytes, sulfur cathode, and lithium anode seriously limit the practical application of lithium–sulfur (Li–S) batteries. Here, a flame‐retardant polyphosphazene (PPZ) covalen...

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Veröffentlicht in:Advanced materials (Weinheim) 2021-03, Vol.33 (9), p.e2007549-n/a, Article 2007549
Hauptverfasser: Chen, Peng, Wu, Zhen, Guo, Tong, Zhou, Yan, Liu, Mingliang, Xia, Xifeng, Sun, Jingwen, Lu, Lude, Ouyang, Xiaoping, Wang, Xin, Fu, Yongsheng, Zhu, Junwu
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Sprache:eng
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Zusammenfassung:The shuttle effect of lithium polysulfides (LiPS) and potential safety hazard caused by the burning of flammable organic electrolytes, sulfur cathode, and lithium anode seriously limit the practical application of lithium–sulfur (Li–S) batteries. Here, a flame‐retardant polyphosphazene (PPZ) covalently modified holey graphene/carbonized cellulose paper is reported as a multifunctional interlayer in Li–S batteries. During the discharge/charge process, once the LiPS are generated, the as‐obtained flame‐retardant interlayer traps them immediately through the nucleophilic substitution reaction between PPZ and LiPS, effectively inhibiting the shuttling effect of LiPS to enhance the cycle stability of Li–S batteries. Meanwhile, this strong chemical interaction increases the diffusion coefficient for lithium ions, accelerating the lithiation reaction with complete inversion. Moreover, the as‐obtained interlayer can be used as a fresh 3D current collector to establish a flame‐retardant “vice‐electrode,” which can trap dissolved sulfur and absorb a large amount of electrolyte, prominently bringing down the flammability of the sulfur cathode and electrolyte to improve the safety of Li–S batteries. This work provides a viable strategy for using PPZ‐based materials as strong chemical scavengers for LiPS and a flame‐retardant interlayer toward next‐generation Li–S batteries with enhanced safety and electrochemical performance. As a flame‐retardant interlayer for lithium–sulfur batteries, polyphosphazene (PPZ) covalently modified holey graphene/carbonized cellulose paper can not only increase the electrochemical performance via strong chemical interaction between components, but also improves the safety of batteries due to the high and low temperature resistance property as well as the good flame‐retardant characteristics of PPZ.
ISSN:0935-9648
1521-4095
DOI:10.1002/adma.202007549