Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
4767422 | Electrochimica Acta | 2017 | 30 Pages |
Abstract
ZnS/C nanoparticles with core/shell structure are prepared by a simple solvothermal process followed by an annealing process. The core consists of a quite amount of ultrasmall ZnS nanocrystals (â¼10 nm) dispersing in in situ formed carbon matrix, which is covered by an outer carbon shell with â¼4 nm thickness. The nano-sized ZnS crystals effectively shorten the lithium ion diffusion paths, while the uniform carbon shell, together with the inner amorphous carbon matrix not only provide fast electron conduction, but also act as a buffer matrix to accommodate volume change occurring on electrochemical cycling. Such hierarchical-type microstructure is beneficial concerning electrochemical performance of the proposed composite. When evaluated as an anode material for rechargeable lithium ion batteries, the ZnS/C nanocomposite shows a high specific capacity of 741 mAh gâ1 at a current density of 0.1 A gâ1 after 300 cycles. Even at 5 A gâ1, a high reversible capacity of 538 mAh gâ1 can be still achieved. The lithium diffusion coefficient of ZnS/C electrode is estimated as 6.1 Ã 10â11 cm2 sâ1, contributing to the excellent rate performance of the material.
Related Topics
Physical Sciences and Engineering
Chemical Engineering
Chemical Engineering (General)
Authors
Xuefei Du, Hailei Zhao, Yao Lu, Zijia Zhang, Andrzej Kulka, Konrad Åwierczek,