Highly Monodispersed Tin Oxide/Mesoporous Starbust Carbon Composite as High-Performance Li-Ion Battery Anode

被引:42
作者
Chen, Jiajun [1 ]
Yano, Kazuhisa [1 ,2 ]
机构
[1] Toyota Res Inst North Amer, Ann Arbor, MI 48105 USA
[2] Toyota Cent R&D Labs, Nagakute, Aichi 4801192, Japan
关键词
lithium-ion battery; tin anodes; starburst carbon; monodispersed; SN-C COMPOSITE; LITHIUM BATTERIES; NANOSHEETS; ELECTRODE; NANOSTRUCTURES; STABILITY; NANOTUBES; LIFEPO4; SPHERES;
D O I
10.1021/am4021846
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The widespread commercialization of today's plug-in hybrid and all electric vehicles will rely on improved lithium batteries with higher energy density, greater power, and durability. To take advantage of the high density of SnO2 anodes for Li ion batteries, we achieved a smart design of monodispersed SnO2/MSCS composite with very high content of SnO2 by a simple infiltration procedure. The synergistic effects of the unique nanoarchitecture of MSCS and the ultrafine size of SnO2 nanoparticle endowed the composite with superior electrochemical performance. Because of the high density of the composite resulting from its monodispersed submicrometer spherical morphology, an exceptionally high reversible lithium storage capacity (both gravimetric and volumetric), very close to the theoretical capacity (1491 mA h/g), can be achieved with good cyclability (capacity retention of 92.5% after IS cycles). The SnO2/MSCS composite anode exhibited a high reversible average capacity of about 1200 mAh/g over 30 cycles at a current of 80 mAh/g, which corresponds to about 1440 mAh/cm(3) (practical volumetric capacity). In addition, a Coulombic efficiency close to 100% was achieved, and less than 25% first irreversible capacity loss was observed.
引用
收藏
页码:7682 / 7687
页数:6
相关论文
共 35 条
[1]   Structural studies of rutile-type metal dioxides [J].
Bolzan, AA ;
Fong, C ;
Kennedy, BJ ;
Howard, CJ .
ACTA CRYSTALLOGRAPHICA SECTION B-STRUCTURAL SCIENCE CRYSTAL ENGINEERING AND MATERIALS, 1997, 53 :373-380
[2]   Hydrothermal synthesis of lithium iron phosphate [J].
Chen, Jiajun ;
Whittingham, M. Stanley .
ELECTROCHEMISTRY COMMUNICATIONS, 2006, 8 (05) :855-858
[3]   Recent Progress in Advanced Materials for Lithium Ion Batteries [J].
Chen, Jiajun .
MATERIALS, 2013, 6 (01) :156-183
[4]   A Review of Nanostructured Lithium Ion Battery Materials via Low Temperature Synthesis [J].
Chen, Jiajun .
RECENT PATENTS ON NANOTECHNOLOGY, 2013, 7 (01) :2-12
[5]   In Situ Generation of Few-Layer Graphene Coatings on SnO2-SiC Core-Shell Nanoparticles for High-Performance Lithium-Ion Storage [J].
Chen, Zhongxue ;
Zhou, Min ;
Cao, Yuliang ;
Ai, Xinping ;
Yang, Hanxi ;
Liu, Jun .
ADVANCED ENERGY MATERIALS, 2012, 2 (01) :95-102
[6]   Nanostructured Sn-C composite as an advanced anode material in high-performance lithium-ion batteries [J].
Derrien, Gaelle ;
Hassoun, Jusef ;
Panero, Stefania ;
Scrosati, Bruno .
ADVANCED MATERIALS, 2007, 19 (17) :2336-+
[7]  
Di Lupo F, 2011, INT J ELECTROCHEM SC, V6, P3580
[8]   SnO2 nanosheets grown on graphene sheets with enhanced lithium storage properties [J].
Ding, Shujiang ;
Luan, Deyan ;
Boey, Freddy Yin Chiang ;
Chen, Jun Song ;
Lou, Xiong Wen .
CHEMICAL COMMUNICATIONS, 2011, 47 (25) :7155-7157
[9]   Characterization of amorphous and crystalline tin-cobalt anodes [J].
Fan, Quan ;
Chupas, Peter J. ;
Whittingham, M. Stanley .
ELECTROCHEMICAL AND SOLID STATE LETTERS, 2007, 10 (12) :A274-A278
[10]   Enabling New Classes of Templated Materials through Mesoporous Carbon Colloidal Crystals [J].
Goodman, Matthew D. ;
Arpin, Kevin A. ;
Mihi, Agustin ;
Tatsuda, Narihito ;
Yano, Kazuhisa ;
Braun, Paul V. .
ADVANCED OPTICAL MATERIALS, 2013, 1 (04) :300-304