Fast lithium-ion insertion of TiO2 nanotube and graphene composites

作者:

J WangY ZhouB XiongY ZhaoX HuangZ Shao

展开

摘要:

Though there have been remarkable growth and widespread application of Li-ion batteries in portable electronics, it is highly desirable to develop the electrode materials with superior performance to meet the challenges of emerging large scale applications in electric vehicles. Here we report the electrochemical lithium insertion performance of TiO2 nanotube/graphene composites, which have been designed and effectively prepared by a one-step hydrothermal method. The structure and morphology of the products were analyzed by X-ray diffraction, FT-IR spectra, Raman spectra, X-ray photoelectron spectroscopy, transmission electron microscopy and field-emission scanning electron microscopy. The electrochemical properties were investigated by cyclic voltammetry, constant current discharge–charge tests, and electrochemical impedance techniques. Employed as an anode in a lithium-ion battery, the novel composites presented excellent electrochemical performance with high Li storage capacity (357mAhg1 at the rate of 10mAg1, exceeding the theoretical capacity value 336mAhg1 of TiO2) and excellent rate performance. The TiO2 nanotube/graphene composite exhibited excellent rate capacities of 150mAhg1 (at the rate of 4000mAg1) after 50 cycles and 80mAhg1 (at the rate of 8000mAg1) after 2000 cycles; the coulombic efficiency was approximately 99.5%, indicating excellent cycling stability and reversibility. The remarkable Li storage and high-rate capabilities of these nanotube/graphene composites were mainly attributed to the synergetic and interactive effects, namely, the "morphology" and "electronic" interactions of both components, and such kinds of graphene and nanotube composites held great promise as good example for designing future graphene based electrode materials with high electrochemical performances, as well as applications in advanced power batteries of EV and HEV.

展开

DOI:

10.1016/j.electacta.2012.10.010

被引量:

74

年份:

2013

通过文献互助平台发起求助,成功后即可免费获取论文全文。

相似文献

参考文献

引证文献

来源期刊

引用走势

2014
被引量:38

站内活动

辅助模式

0

引用

文献可以批量引用啦~
欢迎点我试用!

关于我们

百度学术集成海量学术资源,融合人工智能、深度学习、大数据分析等技术,为科研工作者提供全面快捷的学术服务。在这里我们保持学习的态度,不忘初心,砥砺前行。
了解更多>>

友情链接

百度云百度翻译

联系我们

合作与服务

期刊合作 图书馆合作 下载产品手册

©2025 Baidu 百度学术声明 使用百度前必读

引用