Wang Jiajia, Yue Xiyan, Liu Zhao, Xie Zhengkun, Zhao Qiang, Abudula Abuliti, Guan Guoqing
Graduate School of Science and Technology, Hirosaki University, 1-Bunkyocho, Hirosaki 036-8560, Japan.
Henan Key Laboratory of Materials on Deep-Earth Engineering, School of Materials Science and Engineering, Henan Polytechnic University, Jiaozuo 454003, China.
J Colloid Interface Sci. 2022 Nov;625:248-256. doi: 10.1016/j.jcis.2022.06.022. Epub 2022 Jun 7.
Highly conductive metal sulfides with high theoretical capacities and good conductivity have been considered as anode material alternatives for sodium-ion batteries (SIBs). Unfortunately, the unsatisfactory cycling stability and poor rate performance are usually resulted from the sluggish electrochemical kinetics and volumetric expansion in the charge/discharge process, which severely restricts their applications. Herein, trimetallic sulfides embedded into the carbon matrix with a microsphere shape (denoted as CoNiZnS/C) were successfully prepared by a facile solid sulfidation of tri-metal-organic frameworks. The nanorods-assembled microsphere structure with abundant phase boundaries of multiphase in the CoNiZnS/C would provide abundant active sites and defects for storing sodium ions and rich voids to alleviate the volumetric strains. As the anode material of SIBs, the optimum composite named as CoNiZnS/C-2 in this work demonstrated high initial Coulombic efficiency (96.52% at 0.1 A g), good cycling stability (maintaining 410.7 mA h g at the 960th cycle at 2.0 A g) and excellent rate performance (477.0 mA h g at 5.0 A g). Thus, such a multi-metal sulfide composite with special physical-chemical properties may offer a new insight to promote the electrochemical performance of sulfide-based anode materials for the SIBs.
具有高理论容量和良好导电性的高导电金属硫化物被认为是钠离子电池(SIBs)负极材料的替代品。不幸的是,循环稳定性不理想和倍率性能较差通常是由充放电过程中缓慢的电化学动力学和体积膨胀导致的,这严重限制了它们的应用。在此,通过三金属有机框架的简便固体硫化法成功制备了嵌入碳基体的微球状三金属硫化物(表示为CoNiZnS/C)。CoNiZnS/C中具有丰富多相界面的纳米棒组装微球结构将为存储钠离子提供丰富的活性位点和缺陷,以及丰富的空隙以缓解体积应变。作为SIBs的负极材料,这项工作中命名为CoNiZnS/C-2的最佳复合材料表现出高初始库仑效率(在0.1 A g时为96.52%)、良好的循环稳定性(在2.0 A g下第960次循环时保持410.7 mA h g)和优异的倍率性能(在5.0 A g时为477.0 mA h g)。因此,这种具有特殊物理化学性质的多金属硫化物复合材料可能为提升SIBs硫化物基负极材料的电化学性能提供新的思路。