Core-shell structured ZnS-C nanoparticles with enhanced electrochemical properties for high-performance lithium-ion battery anodes

Core-shell structured ZnS-C nanoparticles are successfully synthesized by a chitosan-assisted hydrothermal method followed by a chemical vapor deposition process using C2H2. The ZnS nanoparticles (c.a. 100–150nm in size) are uniformly coated by a thin carbon shell with a thickness of about 10nm, for...

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Veröffentlicht in:Electrochimica acta 2017-01, Vol.225, p.129-136
Hauptverfasser: Du, Xuefei, Zhao, Hailei, Zhang, Zijia, Lu, Yao, Gao, Chunhui, Li, Zhaolin, Teng, Yongqiang, Zhao, Lina, Świerczek, Konrad
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Sprache:eng
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Zusammenfassung:Core-shell structured ZnS-C nanoparticles are successfully synthesized by a chitosan-assisted hydrothermal method followed by a chemical vapor deposition process using C2H2. The ZnS nanoparticles (c.a. 100–150nm in size) are uniformly coated by a thin carbon shell with a thickness of about 10nm, forming well-dispersed nano-powders. When applied as anode in lithium cells, the synthesized nano-ZnS-C composite exhibits a specific capacity of 565mAhg−1 at 0.1Ag−1 and 363mAhg−1 at 5Ag−1 current density. After 600 cycles at a current density of 0.5Ag−1, the constructed electrode shows over 87% capacity retention, indicating excellent electrochemical performance. The outstanding properties of the obtained nano-ZnS-C can be attributed to the well-defined core-shell nanostructure, in which the nano-sized ZnS core provides short lithium ion diffusion pathways, while the carbon shell allows for a fast electron conduction, and at the same time accommodates the volume changes caused by the lithiation/delithiation of ZnS.
ISSN:0013-4686
1873-3859
DOI:10.1016/j.electacta.2016.12.118