Novel processing of lithium manganese silicate nanomaterials for Li-ion battery applications

被引:42
作者
Devaraju, Murukanahally Kempaiah [1 ]
Tomai, Takaaki [1 ]
Unemoto, Atsushi [1 ]
Honma, Itaru [1 ]
机构
[1] Tohoku Univ, Inst Multidisciplinary Res Adv Mat, Aoba Ku, Sendai, Miyagi 9808577, Japan
来源
RSC ADVANCES | 2013年 / 3卷 / 02期
关键词
ELECTROCHEMICAL PERFORMANCE; SOLVOTHERMAL SYNTHESIS; NANOSTRUCTURED MATERIALS; ELECTRODE MATERIALS; ENERGY-CONVERSION; CATHODE MATERIAL; LI2MNSIO4; STORAGE; LI2FESIO4; MN;
D O I
10.1039/c2ra22409g
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Lithium manganese silicate positive electrode materials have received great attention because of the two lithium ion capacities and can be realized in ultrafine nanoparticles due to their low volumetric changes upon lithium insertion and extraction. A supercritical fluid process has been adopted to synthesize monodisperse Li2MnSiO4 ultrafine particles and hierarchical nanostructures with a mean particle diameter of 4-5 nm and successfully shown to attain a high electrochemical performance. A reversible capacity (190-220 mA h g(-1)) of more than one lithium ion was obtained for the ultrafine monodisperse nanoparticles and hierarchical nanostructures with good cyclability. The enhanced cyclability was found to be due to the monodisperse nanoparticles, which provide a short length for Li-ion diffusion, and possess low volumetric changes. In addition, the varyingly sized Li2MnSiO4 particles were also synthesized via a supercritical fluid process. This process is simple, rapid, energy saving and broadly applicable to other functional materials.
引用
收藏
页码:608 / 615
页数:8
相关论文
共 41 条
  • [1] Size controlled synthesis of Li2MnSiO4 nanoparticles: Effect of calcination temperature and carbon content for high performance lithium batteries
    Aravindan, V.
    Ravi, S.
    Kim, W. S.
    Lee, S. Y.
    Lee, Y. S.
    [J]. JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2011, 355 (02) : 472 - 477
  • [2] Adipic acid assisted sol-gel synthesis of Li2MnSiO4 nanoparticles with improved lithium storage properties
    Aravindan, V.
    Karthikeyan, K.
    Ravi, S.
    Amaresh, S.
    Kim, W. S.
    Lee, Y. S.
    [J]. JOURNAL OF MATERIALS CHEMISTRY, 2010, 20 (35) : 7340 - 7343
  • [3] Nanostructured materials for advanced energy conversion and storage devices
    Aricò, AS
    Bruce, P
    Scrosati, B
    Tarascon, JM
    Van Schalkwijk, W
    [J]. NATURE MATERIALS, 2005, 4 (05) : 366 - 377
  • [4] Building better batteries
    Armand, M.
    Tarascon, J. -M.
    [J]. NATURE, 2008, 451 (7179) : 652 - 657
  • [5] On-demand design of polyoxianionic cathode materials based on electronegativity correlations:: An exploration of the Li2MSiO4 system (M = Fe, Mn, Co, Ni)
    Arroyo-de Dompablo, M. E.
    Armand, M.
    Tarascon, J. M.
    Amador, U.
    [J]. ELECTROCHEMISTRY COMMUNICATIONS, 2006, 8 (08) : 1292 - 1298
  • [6] On the energetic stability and electrochemistry of Li2MnSiO4 polymorphs
    Arroyo-deDompablo, M. E.
    Dominko, R.
    Gallardo-Amores, J. M.
    Dupont, L.
    Mali, G.
    Ehrenberg, H.
    Jamnik, J.
    Moran, E.
    [J]. CHEMISTRY OF MATERIALS, 2008, 20 (17) : 5574 - 5584
  • [7] Structural and Electrochemical Characterization of Li2MnSiO4 Cathode Material
    Belharouak, Ilias
    Abouimrane, A.
    Amine, K.
    [J]. JOURNAL OF PHYSICAL CHEMISTRY C, 2009, 113 (48) : 20733 - 20737
  • [8] Nanomaterials for rechargeable lithium batteries
    Bruce, Peter G.
    Scrosati, Bruno
    Tarascon, Jean-Marie
    [J]. ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2008, 47 (16) : 2930 - 2946
  • [9] Electronically conductive phospho-olivines as lithium storage electrodes
    Chung, SY
    Bloking, JT
    Chiang, YM
    [J]. NATURE MATERIALS, 2002, 1 (02) : 123 - 128
  • [10] Characterization of Li2MnSiO4 and Li2eSiO4 cathode materials synthesized via a citric acid assisted sol-gel method
    Deng, C.
    Zhang, S.
    Fu, B. L.
    Yang, S. Y.
    Ma, L.
    [J]. MATERIALS CHEMISTRY AND PHYSICS, 2010, 120 (01) : 14 - 17