基于缺陷工程的rGO/MoS2-x材料制备与电化学性能研究

    Study on Preparation and Electrochemical Performance of rGO/MoS2-x Material Based on Defect Engineering

    • 摘要: 锂硫电池(LSBs)的商业应用受到多硫化锂(LiPSs)的穿梭效应及其缓慢的氧化还原动力学的严重阻碍。针对以上问题,通过水热法制备了rGO/MoS2复合材料,并且基于缺陷工程策略,在400、500℃下退火3 h将丰富的硫空位引入复合材料,以提高LSBs的性能。结果表明:LiPSs的吸附以及氧化还原反应动力学可以通过优化硫空位到更高的浓度来调节。此外,复合材料中丰富的硫缺陷空位能够加快电子和空穴的分离,易于降低反应过程活化能垒;同时,有利于LiPSs的吸附和电子传递,促进催化反应的发生。得益于这些原因,基于rGO/MoS2-x-500修饰隔膜的LSBs在1 C时显示出令人满意的1016 mAh/g的放电比容量,并且在900次循环中具有0.0618%的低容量衰减率。

       

      Abstract: The commercial application of lithium-sulfur batteries(LSBs) has been seriously hindered by the shuttle effect of lithium polysulfide(Li PSs) and their slow redox kinetics. In response to the above problems, rGO/MoS2 composite material was prepared by hydrothermal method, and based on defect engineering strategy, abundant sulfur vacancies were introduced into the material when the material was annealed at 400, 500 ℃ for 3 h to improve the performance of LSBs. The results show that the absorption and redox reaction kinetics of Li PSs can be adjusted by optimizing sulfur vacancies to higher concentrations. In addition, the rich sulfur defect vacancies in the composite material can accelerate the separation of electrons and holes, which is easy to reduce the activation energy barrier of the reaction process. At the same time, it is beneficial to the adsorption and electron transfer of Li PSs and promote the occurrence of catalytic reactions. Due to these reasons, LSBs based on rGO/MoS2-x -500 modified separators exhibit a satisfactory discharge specific capacity of 1016 m Ah/g at 1 C and a low capacity decay rate of 0.0618% after 900 cycles.

       

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