Zhang Jianli, Wang Yang, Zhou Zhenkai, Chen Qiang, Tang Yiping
College of Material Science and Engineering, Zhejiang University of Technology, Hangzhou 310014, China.
Materials (Basel). 2023 Feb 15;16(4):1635. doi: 10.3390/ma16041635.
Lithium-sulfur batteries have emerged as one of the promising next-generation energy storage devices. However, the dissolution and shuttling of polysulfides in the electrolyte leads to a rapid decrease in capacity, severe self-discharge, and poor high-temperature performance. Here, we demonstrate the design and preparation of a MoC nanoparticle-embedded carbon nanosheet matrix material (MoC/C) and its application in lithium-sulfur battery separator modification. As a polar catalyst, MoC/C can effectively adsorb and promote the reversible conversion of lithium polysulfides, suppress the shuttle effect, and improve the electrochemical performance of the battery. The lithium-sulfur battery with the MoC/C =-modified separator showed a good rate of performance with high specific capacities of 1470 and 799 mAh g at 0.1 and 2 C, respectively. In addition, the long-cycle performance of only 0.09% decay per cycle for 400 cycles and the stable cycling under high sulfur loading indicate that the MoC/C-modified separator holds great promise for the development of high-energy-density lithium-sulfur batteries.
锂硫电池已成为一种很有前景的下一代储能装置。然而,多硫化物在电解质中的溶解和穿梭导致容量迅速下降、严重的自放电以及较差的高温性能。在此,我们展示了一种嵌入MoC纳米颗粒的碳纳米片基质材料(MoC/C)的设计与制备及其在锂硫电池隔膜改性中的应用。作为一种极性催化剂,MoC/C能够有效吸附并促进多硫化锂的可逆转化,抑制穿梭效应,并改善电池的电化学性能。采用MoC/C改性隔膜的锂硫电池在0.1 C和2 C时分别表现出良好的倍率性能,比容量高达1470和799 mAh g。此外,400次循环中每循环仅0.09%的衰减以及高硫负载下的稳定循环表明,MoC/C改性隔膜在高能量密度锂硫电池的发展中具有巨大潜力。