Ordered Network of Interconnected SnO2 Nanoparticles for Excellent Lithium-Ion Storage

被引:138
作者
Etacheri, Vinodkumar [1 ]
Seisenbaeva, Gulaim A. [2 ]
Caruthers, James [1 ]
Daniel, Geoffrey [3 ]
Nedelec, Jean-Marie [4 ,5 ]
Kessler, Vadim G. [2 ]
Pol, Vilas G. [1 ]
机构
[1] Purdue Univ, Sch Chem Engn, W Lafayette, IN 47907 USA
[2] Swedish Univ Agr Sci, Dept Chem & Biotechnol, SE-75007 Uppsala, Sweden
[3] Swedish Univ Agr Sci, Dept Forest Prod Wood Sci, SE-75007 Uppsala, Sweden
[4] Clermont Univ, Inst Chim Clermont Ferrand, ENSCCF, F-63000 Clermont Ferrand, France
[5] ICCF, CNRS, UMR 6296, F-63171 Aubiere, France
关键词
cassiterite; electrochemical energy storage; interfacial kinetics; lithium-ion batteries; mesoporosity; ANODE MATERIALS; HIGH-CAPACITY; ELECTRODE MATERIALS; TIN OXIDE; PERFORMANCE; BATTERIES; NANOWIRE; NANOCOMPOSITES; MICROSPHERES; MESOPOROSITY;
D O I
10.1002/aenm.201401289
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
An ordered network of interconnected tin oxide (SnO2) nanoparticles with a unique 3D architecture and an excellent lithium-ion (Li-ion) storage performance is derived for the first time through hydrolysis and thermal self-assembly of the solid alkoxide precursor. Mesoporous anodes composed of these approximate to 9 nm-sized SnO2 particles exhibit substantially higher specific capacities, rate performance, coulombic efficiency, and cycling stabilities compared with disordered nanoparticles and commercial SnO2. A discharge capacity of 778 mAh g(-1), which is very close to the theoretical limit of 781 mAh g(-1), is achieved at a current density of 0.1 C. Even at high rates of 2 C (1.5 A g(-1)) and 6 C (4.7 A g(-1)), these ordered SnO2 nanoparticles retain stable specific capacities of 430 and 300 mAh g(-1), respectively, after 100 cycles. Interconnection between individual nanoparticles and structural integrity of the SnO2 electrodes are preserved through numerous charge-discharge process cycles. The significantly better electrochemical performance of ordered SnO2 nanoparticles with a tap density of 1.60 g cm(-3) is attributed to the superior electrode/electrolyte contact, Li-ion diffusion, absence of particle agglomeration, and improved strain relaxation (due to tiny space available for the local expansion). This comprehensive study demonstrates the necessity of mesoporosity and interconnection between individual nanoparticles for improving the Li-ion storage electrochemical performance of SnO2 anodes.
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页数:8
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共 53 条
[31]   Spherical carbon particles and carbon nanotubes prepared by autogenic reactions: Evaluation as anodes in lithium electrochemical cells [J].
Pol, Vilas G. ;
Thackeray, Michael M. .
ENERGY & ENVIRONMENTAL SCIENCE, 2011, 4 (05) :1904-1912
[32]   Photocatalytic Synthesis of TiO2 and Reduced Graphene Oxide Nanocomposite for Lithium Ion Battery [J].
Qiu, Jingxia ;
Zhang, Peng ;
Ling, Min ;
Li, Sheng ;
Liu, Porun ;
Zhao, Huijun ;
Zhang, Shanqing .
ACS APPLIED MATERIALS & INTERFACES, 2012, 4 (07) :3636-3642
[33]   High-resolution electron microscopy investigation of capacity fade in SnO2 electrodes for lithium-ion batteries [J].
Retoux, R ;
Brousse, T ;
Schleich, DM .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1999, 146 (07) :2472-2476
[34]   General Facile Approach to Transition-Metal Oxides with Highly Uniform Mesoporosity and Their Application as Adsorbents for Heavy-Metal-Ion Sequestration [J].
Seisenbaeva, Gulaim A. ;
Daniel, Geoffrey ;
Kessler, Vadim G. ;
Nedelec, Jean-Marie .
CHEMISTRY-A EUROPEAN JOURNAL, 2014, 20 (34) :10732-10736
[35]   Precursor directed synthesis - "molecular" mechanisms in the Soft Chemistry approaches and their use for template-free synthesis of metal, metal oxide and metal chalcogenide nanoparticles and nanostructures [J].
Seisenbaeva, Gulaim A. ;
Kessler, Vadim G. .
NANOSCALE, 2014, 6 (12) :6229-6244
[36]   Controlled fabrication of SnO2 arrays of well-aligned nanotubes and nanowires [J].
Shi, Liang ;
Xu, Yeming ;
Li, Quan .
NANOSCALE, 2010, 2 (10) :2104-2108
[37]   Enhanced performance of Fe1.5P anode materials by SnO2/Sn modification for lithium-ion batteries [J].
Sun, Wenjun ;
Luo, Chunhui ;
Wang, Guixin ;
Yan, Kangping .
JOURNAL OF ALLOYS AND COMPOUNDS, 2012, 535 :114-119
[38]   Large-Scale Synthesis of SnO2 Nanosheets with High Lithium Storage Capacity [J].
Wang, Cen ;
Zhou, Yun ;
Ge, Mingyuan ;
Xu, Xiaobin ;
Zhang, Zaoli ;
Jiang, J. Z. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2010, 132 (01) :46-+
[39]   In Situ Transmission Electron Microscopy Observation of Microstructure and Phase Evolution in a SnO2 Nanowire during Lithium Intercalation [J].
Wang, Chong-Min ;
Xu, Wu ;
Liu, Jun ;
Zhang, Ji-Guang ;
Saraf, Lax V. ;
Arey, Bruce W. ;
Choi, Daiwon ;
Yang, Zhen-Guo ;
Xiao, Jie ;
Thevuthasan, Suntharampillai ;
Baer, Donald R. .
NANO LETTERS, 2011, 11 (05) :1874-1880
[40]   Accurate Control of Multishelled Co3O4 Hollow Microspheres as High-Performance Anode Materials in Lithium-Ion Batteries [J].
Wang, Jiangyan ;
Yang, Nailiang ;
Tang, Hongjie ;
Dong, Zhenghong ;
Jin, Quan ;
Yang, Mei ;
Kisailus, David ;
Zhao, Huijun ;
Tang, Zhiyong ;
Wang, Dan .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2013, 52 (25) :6417-6420