4.6 Article

Hierarchically Assembled 2D Nanoplates and 0D Nanoparticles of Lithium-Rich Layered Lithium Manganates Applicable to Lithium Ion Batteries

期刊

JOURNAL OF PHYSICAL CHEMISTRY C
卷 113, 期 40, 页码 17392-17398

出版社

AMER CHEMICAL SOC
DOI: 10.1021/jp904072r

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资金

  1. Ministry of Education, Science and Technology
  2. Korea government [20080061493]
  3. MOST/KOSEF [R11-2005-008-03002-0]
  4. MOST
  5. POSTECH
  6. Ministry of Education, Science & Technology (MoST), Republic of Korea [09BD01] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)
  7. National Research Foundation of Korea [2008-0061493, 2008-0057806] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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The porous hierarchical assembly of lithium-rich Li1+xMnO3-delta 2D nanoplates as well as isolated 0D nanocrystalline homologues has been synthesized via lithiation reactions of nanostructured manganese oxides under hydrothermal conditions. According to powder X-ray diffraction and electron microscopy, a hydrothermal LiOH treatment for nanostructured delta-MnO2 precursor produces a lithium-rich Li1+xMnO3-delta phase with the nanoworm-like hierarchically assembled 2D nanoplate morphology. After the lithiation reaction under identical conditions, the 1D nanowires of the alpha-MnO2 precursor are transformed into the 0D nanoparticles of the Li1+xMnO3-delta phase. The Mn K-edge X-ray absorption spectroscopic analysis for the lithiated materials clearly demonstrated that tetravalent manganese ions are stabilized in octahedral sites of a Li2MnO3-type layered structure composed of edge-shared MnO6/LiO6 octahedra. From electrochemical measurements, it was found that the lithiated Li1+xMnO3-delta nanostructured materials show much superior electrode performance over the precursor manganese oxides and bulk lithium-rich manganate. The powder X-ray diffraction analyses for the electrochemically cycled derivatives clearly demonstrated that the improvement of electrode performance after lithiation can be attributed to the phase transformation to the Li-rich Li1+xMnO3-delta phase with high structural stability. On the basis of the present experimental findings, we are able to Conclude that the present phase transformation route provides a new method not only to synthesize nanostructured lithium-rich manganese oxides with controllable dimensionality and morphology but also to improve the electrode performance of nanostructured manganese oxides.

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