Zhang Xiaojie, Gao Xiaoyan, Li Dong, Duanmu Chuansong, Jiang Jinlong, Chen Jing, Yu Xiangkun, Dong Peishi
National & Local Joint Engineering Research Center for Mineral Salt Deep Utilization, Huaiyin Institute of Technology, Huaian 223003, China; Key Laboratory for Palygorskite Science and Applied Technology of Jiangsu Province, Huaiyin Institute of Technology, Huaian 223003, China.
National & Local Joint Engineering Research Center for Mineral Salt Deep Utilization, Huaiyin Institute of Technology, Huaian 223003, China; Key Laboratory for Palygorskite Science and Applied Technology of Jiangsu Province, Huaiyin Institute of Technology, Huaian 223003, China.
J Colloid Interface Sci. 2020 Mar 15;563:354-362. doi: 10.1016/j.jcis.2019.12.090. Epub 2019 Dec 21.
Metal-organic hybrid frameworks are considered as the promising precursor to prepare high performance anode materials for sodium-ion batteries (SIBs). In the present work, flower-like NiO/ZnO@NC with hollow and porous structure was prepared via a facile solvothermal and calcination process. The hollow and porous structure not only improve the electron transport capability, and but also inhibits the aggregation and accommodates the volume change of NiO/ZnO@NC. Meanwhile, the coated amorphous carbon layer could also increase the electron conductivity and buffer the huge volume expansion of active material NiO/ZnO. When used as anode for SIBs, NiO/ZnO@NC demonstrates a high specific capacity of 300 mAh g with good cycling stability for 150 cycles, fast charge and discharge capability (154 mAh g at 2500 mA g) and superior long cycling life at high current density for 2500 cycles. The strategy in this work should provide a new insight into fabrication novel structural anode materials for high performance SIBs.
金属有机杂化框架被认为是制备高性能钠离子电池(SIBs)负极材料的有前途的前驱体。在本工作中,通过简便的溶剂热和煅烧过程制备了具有中空和多孔结构的花状NiO/ZnO@NC。这种中空和多孔结构不仅提高了电子传输能力,还抑制了团聚并适应了NiO/ZnO@NC的体积变化。同时,包覆的非晶碳层也可以提高电子导电性并缓冲活性材料NiO的巨大体积膨胀。当用作SIBs的负极时,NiO/ZnO@NC表现出300 mAh g的高比容量,在150次循环中具有良好的循环稳定性,快速充放电能力(在2500 mA g下为154 mAh g)以及在2500次循环的高电流密度下具有优异的长循环寿命。本工作中的策略应为制备用于高性能SIBs的新型结构负极材料提供新的见解。