富含活性位点的沸石咪唑盐酸盐框架/MXene 异质结构改性隔膜可改善高性能锂-S 电池的 Li+ 传输

Leiping Liao, Huanhuan Duan, Guohua Chen, Yuanfu Deng
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摘要

多硫化锂(LiPSs)不可避免的穿梭性和较差的氧化还原动力学限制了锂硫(Li-S)电池在现实世界中的应用,尽管它们一直受到广泛关注。本文开发了一种薄型多功能异质结构(ZIF-L/MXene),由叶状沸石咪唑酸框架片(ZIF-L)和二维层状 Ti3C2Tx MXene 纳米片组成,用于改性聚烯烃基隔膜。将 ZIF-L 和 MXene 的优点很好地结合在一起,可以阻碍 MXene 纳米片的重新堆积,并获得较大的比表面积,从而为锂离子电池的吸附和催化反应提供大量的活性位点。考虑到这些明显的协同效应,ZIF-L/MXene 异质结构修饰的分离器不仅减轻了锂离子的穿梭,还促进了锂离子的动力学转化。此外,ZIF-L/MXene 改性分离器还能改善电解质亲和性,加速 Li+ 的传输。因此,改性隔膜使锂离子电池在 0.2 摄氏度条件下的放电容量达到了惊人的 1371.7 mAh g-1,并具有良好的循环稳定性,在 500 次循环过程中,每次循环的容量衰减率仅为 0.075%。即使在硫负荷约为 4.1 mg cm-2 的情况下,该锂-S 电池在 0.1 C 时也能达到 990.6 mAh g-1 的出色容量,并保持良好的循环性能。这项工作中的新型 ZIF-L/MXene 异质结构改性隔膜可通过增强氧化还原动力学和减少锂离子电池的穿梭,为设计高性能锂-S 电池的轻薄隔膜提供另一种策略。
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Active sites-rich zeolitic imidazolate framework/MXene heterostructure modified separator with improved Li+ transport for high-performance Li-S batteries
The inevitable shuttling of lithium polysulfides (LiPSs) and poor redox kinetics restrict real-world applications of lithium-sulfur (Li-S) batteries, although they have been paid plentiful attention. Herein, a thin and multifunctional heterostructure (ZIF-L/MXene), consisting of leaf-like zeolitic imidazolate framework sheets (ZIF-L) and two-dimensional layered Ti3C2Tx MXene nanosheets, is developed for modification of polyolefin-based separators. A good combination of the merits of the ZIF-L and MXene can hinder the restacking of MXene nanosheets and achieve a large specific surface area, thus exposing plentiful active sites for adsorption and catalytic reaction of LiPSs. Taking these obviously synergistic effects, the ZIF-L/MXene heterostructure modified separators not only alleviate the shuttling of LiPSs but also promote their kinetics conversion. Furthermore, with an improved electrolyte affinity, the ZIF-L/MXene modified separators can accelerate the transport of Li+. Thus, the modified separator endows a Li-S cell with an admirable discharge capacity of 1371.7 mAh g-1 at 0.2 C and favorable cycling stability, with a slow capacity decay ratio of 0.075% per cycle during 500 cycles. Even under a sulfur loading of ~ 4.1 mg cm-2, the Li-S battery can achieve an excellent capacity of 990.6 mAh g-1 at 0.1 C and maintain an excellent cycling performance. The novel ZIF-L/MXene heterostructure modified separator in this work can provide an alternative strategy for designing thin and light separators for high-performance Li-S batteries, via the enhancement of redox kinetics and reduction of shuttling of the LiPSs.
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