High-performance hybrid supercapacitor enabled by advantageous heterojunction boosted starfish-like ZnCo-S electrode

海星 超级电容器 材料科学 电极 电化学 异质结 纳米技术 光电子学 化学 生态学 生物 物理化学
作者
Yuan Yang,Shuo Li,Shanshan Li,Pengchao Si,Lijie Ci
出处
期刊:Journal of Alloys and Compounds [Elsevier]
卷期号:928: 166997-166997 被引量:2
标识
DOI:10.1016/j.jallcom.2022.166997
摘要

Transition metal sulfides are regarded as attractive battery-type electrode materials for hybrid supercapacitors (HSCs) owing to their pronouncedly elevated theoretical capacity and good electrical conductivity. The rational design and manufacturing of multiphase materials are efficient strategies for improving electrode materials' electrochemical performance. Therefore, starfish-like ZnCo-S sulfide composite electrode materials were constructed as advanced hybrid supercapacitor electrode materials by co-precipitation and hydrothermal methods. The ZnCo-S features a higher specific surface area, multi-level pore structure, and heterogeneous interfacial effect, which can contribute abundant active sites and shorter charge transport paths for electrochemical reactions, resulting in distinguished electrochemical performance. The specific capacity of ZnCo-S sulfide composite electrode material is as high as 1171.6 C g -1 at 2 A g -1 . The assembled solid-state hybrid supercapacitor has outstanding energy density (64 Wh kg -1 ) and power density (16 kW kg -1 ) with a capacity retention rate of 92.7% after 10,000 cycles. Starfish-like ZnCo-S sulfide composite electrode materials boosted by advantageous heterojunction were constructed as advanced hybrid supercapacitor electrode materials. • Starfish-like ZnCo-S sulfide composite are constructed. • The ZnCo-S electrode materials are boosted by advantageous heterojunction. • The ZnCo-S features a higher specific surface area, multi-level pore structure, and heterogeneous interfacial effect, resulting in distinguished electrochemical performance. • When assembled to hybrid supercapacitor, the installation delivers a high energy density and power density.

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