Xiong Jing, Liu Xinyun, Xia Peng, Guo Xincheng, Lu Shengjun, Lei Hua, Zhang Yufei, Fan Haosen
College of Materials Science and Metallurgy Engineering, Guizhou University, Guiyang 550025, China.
College of Materials Science and Metallurgy Engineering, Guizhou University, Guiyang 550025, China.
J Colloid Interface Sci. 2023 Dec 15;652(Pt B):1417-1426. doi: 10.1016/j.jcis.2023.08.185. Epub 2023 Aug 29.
In this manuscript, nickel/cobalt bimetallic nanocrystals confining into three-dimensional interpenetrating dual-carbon conductive structure (NiCo@C/CNTs) were successfully manufactured by annealing its core-shell structure (Ni-ZIF-67@ZIF-8) precursor under the high temperature. The results presented that the bimetallic nickel and cobalt nanocrystals with superior catalytic activity could quickly convert solid LiS/LiSinto soluble LiPSs and effectively decrease the energy barrier. While the hierarchical CNT-porous carbon dual frameworks can provide quick electron/ion transport because of their large specific surface area and the exposure of enough active sites. When used as the separator modifier for lithium sulfur batteries, the battery properties were significantly improved with high specific capacity, outstanding rate capability, and long-term cycle stability. Specifically, its initial specific capacity can achieve to 1038.51 mAh g at 0.5C. At the high rate of 3C, it still delivers satisfactory discharge capacity of 555 mAhg and the capacity decay rate is only 0.065% per cycle after 1000 cycles at 1C. Furthermore, even exposed to heavy sulfur loading (3.61 mg/cm), they still maintain promising cycle stability. Therefore, such kinds of MOFs derivative with powerful chemical immobilization and catalytic conversion for polysulfides provides a novel guidance for the modification separator and the potential application in the field of high-performance Li-S batteries.
在本论文中,通过高温退火其核壳结构(Ni-ZIF-67@ZIF-8)前驱体,成功制备了限域于三维互穿双碳导电结构(NiCo@C/CNTs)中的镍/钴双金属纳米晶体。结果表明,具有优异催化活性的双金属镍和钴纳米晶体能够快速将固态LiS/LiS转化为可溶性多硫化锂(LiPSs),并有效降低能垒。而分级的碳纳米管-多孔碳双骨架因其大比表面积和足够活性位点的暴露,可提供快速的电子/离子传输。当用作锂硫电池的隔膜改性剂时,电池性能得到显著改善,具有高比容量、出色的倍率性能和长期循环稳定性。具体而言,其在0.5C时的初始比容量可达1038.51 mAh g。在3C的高倍率下,它仍能提供555 mAhg的满意放电容量,且在1C下循环1000次后容量衰减率仅为每循环0.065%。此外,即使在高硫负载(3.61 mg/cm)下,它们仍保持良好的循环稳定性。因此,这种对多硫化物具有强大化学固定和催化转化能力的金属有机框架(MOFs)衍生物为改性隔膜以及在高性能锂硫电池领域的潜在应用提供了新的指导。