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Published on: November 11, 2013
Frenkel-Defect-Mediated Chemical Ordering Transition in a Li-Mn-Ni Spinel Oxide
Hyewon Ryoo1, Hyung Bin Bae2, Young-Min Kim3
1Graduate School of EEWS, Korea Advanced Institute of Science and Technology (KAIST), Daejeon 305-338 (Korea) https://sites.google.com/site/atomicscaledefects/
Abstract:
Using spinel-type Li(Mn(1.5)Ni(0.5) )O4 with two different cations, Mn and Ni, in the oxygen octahedra as a model system, we show that a cation ordering transition takes place through the formation of Frenkel-type point defects. A series of experimental results based on atomic-scale observations and in situ powder diffractions along with ab initio calculations consistently support such defect-mediated transition behavior. In addition to providing a precise suggestion of the intermediate transient states and the resulting kinetic pathway during the transition between two phases, our findings emphasize the significant role of point defects in ordering transformation of complex oxides.
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