A novel nanosized silicon-based composite as anode material for high performance lithium ion batteries
β Scribed by Xiuyan Wang; Zhaoyin Wen; Yu Liu
- Publisher
- Elsevier Science
- Year
- 2011
- Tongue
- English
- Weight
- 920 KB
- Volume
- 56
- Category
- Article
- ISSN
- 0013-4686
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β¦ Synopsis
A new kind of silicon-based composite anode with high initial coulombic efficiency and good cycling performance is synthesized by a wet high energy mechanical milling technique and characterized by Xray diffraction, transmission electron microscope and high resolution transmission electron microscope. It is demonstrated that the in situ formed Si particles with size of 5-10 nm are uniformly distributed in the elastic matrices consisting of the in situ formed Li-containing compounds, amorphous P 2 O 5 , SiP 2 O 7 , Ni, Si-Ni alloys and conductive graphite. The elastic matrices can effectively alleviate the volume variations of the active Si particles during long-term cycling. The as-prepared silicon-based composite electrode reveals an initial discharge and charge capacity of 549 and 565.3 mAh g -1 , respectively, with an initial coulombic efficiency of 103%. After 80 cycles, the reversible capacity of the composite electrode is up to 560.7 mAh g -1 with a capacity retention rate of 99%.
π SIMILAR VOLUMES
Silicon thin film with thickness in range 1000-5300 Γ deposited on rough Cu foil by a radio frequency magnetron sputtering is used as anode materials for Li-ion rechargeable batteries. The SEM, XRD and TEM analysis reveals that the Si thin film has a floccular nano-sized multi-crystalline structure.