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Jiayan Luo, Yonggang Wang, H. Xiong, Yongyao Xia (2007)
Ordered Mesoporous Spinel LiMn2O4 by a Soft-Chemical Process as a Cathode Material for Lithium-Ion BatteriesChemistry of Materials, 19
Monica Lazarraga, L. Pascual, H. Gadjov, D. Kovacheva, K. Petrov, J. Amarilla, R. Rojas, M. Martín-Luengo, J. Rojo (2004)
Nanosize LiNiyMn2 −yO4(0 < y≤ 0.5) spinels synthesized by a sucrose-aided combustion method. Characterization and electrochemical performanceJournal of Materials Chemistry, 14
P. Bruce, B. Scrosati, J. Tarascon (2008)
Nanomaterials for rechargeable lithium batteries.Angewandte Chemie, 47 16
Xiaoling Xiao, J. Lu, Yadong Li (2010)
LiMn2O4 microspheres: Synthesis, characterization and use as a cathode in lithium ion batteriesNano Research, 3
Yu‐Guo Guo, Jinsong Hu, L. Wan (2008)
Nanostructured Materials for Electrochemical Energy Conversion and Storage DevicesAdvanced Materials, 20
M. Armand, J. Tarascon (2008)
Building better batteriesNature, 451
J. Arrebola, Á. Caballero, M. Cruz, L. Hernán, J. Morales, E. Castellón (2006)
Crystallinity Control of a Nanostructured LiNi0.5Mn1.5O4 Spinel via Polymer‐Assisted Synthesis: A Method for Improving Its Rate Capability and Performance in 5 V Lithium BatteriesAdvanced Functional Materials, 16
J. Hassoun, Ki-Soo Lee, Yang‐Kook Sun, B. Scrosati (2011)
An advanced lithium ion battery based on high performance electrode materials.Journal of the American Chemical Society, 133 9
D. Kim, P. Muralidharan, Hyun‐Wook Lee, R. Ruffo, Yuan Yang, Candace Chan, H. Peng, R. Huggins, Yi Cui (2008)
Spinel LiMn2O4 nanorods as lithium ion battery cathodes.Nano letters, 8 11
X. Lou, L. Archer, Zichao Yang (2008)
Hollow Micro‐/Nanostructures: Synthesis and ApplicationsAdvanced Materials, 20
J. Chen, L. Archer, X. Lou (2011)
SnO2 hollow structures and TiO2 nanosheets for lithium-ion batteriesJournal of Materials Chemistry, 21
A. Aricò, P. Bruce, B. Scrosati, J. Tarascon, W. Schalkwijk (2005)
Nanostructured materials for advanced energy conversion and storage devicesNature Materials, 4
Jiayan Luo, Liang Cheng, Yongyao Xia (2007)
LiMn2O4 hollow nanosphere electrode material with excellent cycling reversibility and rate capabilityElectrochemistry Communications, 9
Yuan‐Li Ding, Xinbing Zhao, Jian Xie, G. Cao, T. Zhu, Hongming Yu, Cheng-Yue Sun (2011)
Double-shelled hollow microspheres of LiMn2O4 for high-performance lithium ion batteriesJournal of Materials Chemistry, 21
Q. Zhong, A. Bonakdarpour, Meijie Zhang, Yuan Gao, J. Dahn (1997)
Synthesis and Electrochemistry of LiNi x Mn2 − x O 4Journal of The Electrochemical Society, 144
F. Jiao, Jianli Bao, A. Hill, P. Bruce (2008)
Synthesis of ordered mesoporous Li-Mn-O spinel as a positive electrode for rechargeable lithium batteries.Angewandte Chemie, 47 50
D. Tonti, M. Torralvo, E. Enciso, I. Sobrados, J. Sanz (2008)
Three-Dimensionally Ordered Macroporous Lithium Manganese Oxide for Rechargeable Lithium BatteriesChemistry of Materials, 20
J. Tarascon, M. Armand (2001)
Issues and challenges facing rechargeable lithium batteriesNature, 414
Yuan‐Li Ding, Jian Xie, G. Cao, T. Zhu, Hongming Yu, Xinbing Zhao (2011)
Single‐Crystalline LiMn2O4 Nanotubes Synthesized Via Template‐Engaged Reaction as Cathodes for High‐Power Lithium Ion BatteriesAdvanced Functional Materials, 21
Peter Bruce, B. Scrosati, Jean-Marie Tarascon (2008)
Nanomaterialien für wiederaufladbare LithiumbatterienAngewandte Chemie, 120
K. Shaju, P. Bruce (2008)
Nano-LiNi(0.5)Mn(1.5)O(4) spinel: a high power electrode for Li-ion batteries.Dalton transactions, 40
E. Hosono, T. Kudo, I. Honma, H. Matsuda, Haoshen Zhou (2009)
Synthesis of single crystalline spinel LiMn2O4 nanowires for a lithium ion battery with high power density.Nano letters, 9 3
Hyun‐Wook Lee, P. Muralidharan, R. Ruffo, C. Mari, Yi Cui, D. Kim (2010)
Ultrathin spinel LiMn2O4 nanowires as high power cathode materials for Li-ion batteries.Nano letters, 10 10
K. Shaju, P. Bruce (2008)
A Stoichiometric Nano-LiMn2O4 Spinel Electrode Exhibiting High Power and Stable CyclingChemistry of Materials, 20
Built to last: Uniform LiNi0.5Mn1.5O4 hollow microspheres and microcubes (see picture; scale bars: 1 μm) with nanosized building blocks have been synthesized by a facile impregnation method followed by a simple solid‐state reaction. The resultant LiNi0.5Mn1.5O4 hollow structures deliver a discharge capacity of about 120 mA h g−1 over prolonged cycling and exhibit excellent rate capability.
Angewandte Chemie International Edition – Wiley
Published: Jan 2, 2012
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