Effect of microstructure and Sn/C ratio in SnO2-graphene nanocomposites for lithium-ion battery performance

被引:25
作者
Ara, Mahbuba [1 ]
Wadumesthrige, Kapila [1 ]
Meng, Tiejun [1 ]
Salley, Steven O. [1 ]
Simon Ng, K. Y. [1 ]
机构
[1] Wayne State Univ, Dept Chem Engn & Mat Sci, Detroit, MI 48202 USA
关键词
GRAPHITE NEGATIVE ELECTRODES; ANODE MATERIAL; ELECTROCHEMICAL LITHIATION; COMPOSITE NANOFIBERS; SURFACE-CHEMISTRY; OXIDE COMPOSITE; SNO2; LI; GRAPHENE; TIN;
D O I
10.1039/c4ra00851k
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Sn based nanocomposite anodes with a pristine graphene matrix were synthesized in order to investigate the performance improvements that are related to the microstructure variation. Four nanocomposites with varying SnO2 contents (25, 43, 60, and 82 wt%) were prepared with a controlled hydrothermal synthesis route. TEM measurements indicated that the 25/75 wt% SnO2-graphene nanocomposite had the highest dispersivity with a 2-3 nm particle size and similar to 2 nm inter-particle spacing. Increasing SnO2 content led to increasing particle size and decreasing inter-particle spacing. For the anode with more dispersed and smaller nanoparticles, the capacity retention and rate capability were noticeably improved compared with anodes that have clusters of SnO2 nanoparticles. The 25/75 wt% SnO2-graphene nanocomposite exhibited enhanced specific capacity of 662 mA h g(-1) after 150 cycles when discharged-charged at 50 mA g(-1). It also demonstrated an outstanding rate capability of 525, 445 and 230 mA h g(-1) at higher current densities of 300, 500 and 1000 mA g(-1), respectively. TEM and EIS studies revealed that after 100 electrochemical cycles, the nanoparticles retained the original size of 2-3 nm and cell's charge transfer resistance decreased by 52%.
引用
收藏
页码:20540 / 20547
页数:8
相关论文
共 52 条
[21]   Laser-ablation growth and optical properties of wide and long single-crystal SnO2 ribbons [J].
Hu, JQ ;
Bando, Y ;
Liu, QL ;
Golberg, D .
ADVANCED FUNCTIONAL MATERIALS, 2003, 13 (06) :493-496
[22]   Carbon-Coated SnO2 Nanorod Array for Lithium-Ion Battery Anode Material [J].
Ji, Xiaoxu ;
Huang, Xintang ;
Liu, Jinping ;
Jiang, Jian ;
Li, Xin ;
Ding, Ruimin ;
Hu, Yingying ;
Wu, Fei ;
Li, Qiang .
NANOSCALE RESEARCH LETTERS, 2010, 5 (03) :649-653
[23]  
Jia Y, 2009, J PHYS CHEM C, V113, P9581, DOI [10.1021/jp9001719, 10.1021/jp905420v]
[24]  
Kamali AR, 2011, REV ADV MATER SCI, V27, P14
[25]   Critical size of a nano SnO2 electrode for Li-secondary battery [J].
Kim, C ;
Noh, M ;
Choi, M ;
Cho, J ;
Park, B .
CHEMISTRY OF MATERIALS, 2005, 17 (12) :3297-3301
[26]   SnO2/Graphene Composite with High Lithium Storage Capability for Lithium Rechargeable Batteries [J].
Kim, Haegyeom ;
Kim, Sung-Wook ;
Park, Young-Uk ;
Gwon, Hyeokjo ;
Seo, Dong-Hwa ;
Kim, Yuhee ;
Kang, Kisuk .
NANO RESEARCH, 2010, 3 (11) :813-821
[27]   Preparation and photooxidation properties of metal oxide semiconductors incorporated in layer silicates [J].
Körösi, L ;
Mogyorósi, K ;
Kun, R ;
Németh, J ;
Dékány, I .
FROM COLLOIDS TO NANOTECHNOLOGY, 2004, 125 :27-33
[28]   Lithium Ion Cell Performance Enhancement Using Aqueous LiFePO4 Cathode Dispersions and Polyethyleneimine Dispersant [J].
Li, Jianlin ;
Armstrong, Beth L. ;
Kiggans, Jim ;
Daniel, Claus ;
Wood, David L., III .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2013, 160 (02) :A201-A206
[29]   One-Step In situ Synthesis of SnO2/Graphene Nanocomposites and Its Application As an Anode Material for Li-Ion Batteries [J].
Liang, Junfei ;
Wei, Wei ;
Zhong, Da ;
Yang, Qinglin ;
Li, Lidong ;
Guo, Lin .
ACS APPLIED MATERIALS & INTERFACES, 2012, 4 (01) :454-459
[30]   A Yolk-Shell Design for Stabilized and Scalable Li-Ion Battery Alloy Anodes [J].
Liu, Nian ;
Wu, Hui ;
McDowell, Matthew T. ;
Yao, Yan ;
Wang, Chongmin ;
Cui, Yi .
NANO LETTERS, 2012, 12 (06) :3315-3321