Bimetallic nickel cobalt sulfides with hierarchical coralliform architecture for ultrafast and stable Na-ion storage

被引:0
作者
Yanyan He
Caifu Dong
Sijia He
Huan Li
Xiuping Sun
Yuan Cheng
Guowei Zhou
Liqiang Xu
机构
[1] Qilu University of Technology (Shandong Academy of Sciences),Key Laboratory of Fine Chemicals in Universities of Shandong, School of Chemistry and Chemical Engineering
[2] Shandong University,Key Laboratory of Colloid & Interface Chemistry, Ministry of Education and School of Chemistry and Chemical Engineering
[3] Yantai University,School of Environmental and Material Engineering
来源
Nano Research | 2021年 / 14卷
关键词
nickel cobalt sulfides; hierarchical coralliform architecture; sodium-ion batteries; anode materials; pseudocapacitive behavior;
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摘要
A series of bimetallic nickel cobalt sulfides with hierarchical micro/nano architectures were fabricated via a facile synthesis strategy of bimetallic micro/nano structure precursor construction-anion exchange via solvothermal method. Among the nickel cobalt sulfides with different Ni/Co contents, the coral-like Ni1.01Co1.99S4 (Ni/Co, 1/2) delivers ultrafast and stable Na-ion storage performance (350 mAh·g−1 after 1,000 cycles at 1 A·g−1 and 355 mAh·g−1 at 5 A·g−1). The remarkable electrochemical properties can be attributed to the enhanced conductivity by co-existence of bimetallic components, the unique coral-like micro/nanostructure, which could prevent structural collapse and self-aggregation of nanoparticles, and the easily accessibility of electrolyte, and fast Na+ diffusion upon cycling. Detailed kinetics studies by a galvanostatic intermittent titration technique (GITT) reveal the dynamic change of Na+ diffusion upon cycling, and quantitative kinetic analysis indicates the high contribution of pseudocapacitive behavior during charge-discharge processes. Moreover, the ex-situ characterization analysis results further verify the Na-ion storage mechanism based on conversion reaction. This study is expected to provide a feasible design strategy for the bimetallic sulfides materials toward high performance sodium-ion batteries.
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页码:4014 / 4024
页数:10
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