Chen Peng, Wu Zhen, Guo Tong, Zhou Yan, Liu Mingliang, Xia Xifeng, Sun Jingwen, Lu Lude, Ouyang Xiaoping, Wang Xin, Fu Yongsheng, Zhu Junwu
Key Laboratory for Soft Chemistry and Functional Materials of Ministry of Education, Nanjing University of Science and Technology, Nanjing, 210094, P. R. China.
Key Laboratory of Low Dimensional Materials and Application Technology, School of Materials Science and Engineering, Xiangtan University, Xiangtan, 411105, P. R. China.
Adv Mater. 2021 Mar;33(9):e2007549. doi: 10.1002/adma.202007549. Epub 2021 Jan 27.
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.
多硫化锂(LiPS)的穿梭效应以及由易燃有机电解质、硫正极和锂负极燃烧引起的潜在安全隐患严重限制了锂硫(Li-S)电池的实际应用。在此,报道了一种阻燃聚磷腈(PPZ)共价修饰的多孔石墨烯/碳化纤维素纸作为Li-S电池中的多功能中间层。在充放电过程中,一旦生成LiPS,所制备的阻燃中间层通过PPZ与LiPS之间的亲核取代反应立即捕获它们,有效抑制LiPS的穿梭效应,从而提高Li-S电池的循环稳定性。同时,这种强化学相互作用增加了锂离子的扩散系数,加速了具有完全反转的锂化反应。此外,所制备的中间层可用作新型三维集流体,建立阻燃“副电极”,它可以捕获溶解的硫并吸收大量电解质,显著降低硫正极和电解质的可燃性,提高Li-S电池的安全性。这项工作为使用基于PPZ的材料作为LiPS的强化学清除剂以及用于下一代具有更高安全性和电化学性能的Li-S电池的阻燃中间层提供了一种可行的策略。