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Optimum Morphology of Mixed-Olivine Mesocrystals for a Li-Ion Battery.
Park, Kimin; Kim, Jaewon; Wi, Sungun; Lee, Sangheon; Hwang, Taehyun; Kim, Jaewook; Kang, Joonhyeon; Choi, Joon-Phil; Nam, Seunghoon; Park, Byungwoo.
Afiliación
  • Park K; Department of Materials Science and Engineering and Research Institute of Advanced Materials , Seoul National University , Seoul 08826 , Korea.
  • Kim J; Department of Materials Science and Engineering and Research Institute of Advanced Materials , Seoul National University , Seoul 08826 , Korea.
  • Wi S; Department of Materials Science and Engineering and Research Institute of Advanced Materials , Seoul National University , Seoul 08826 , Korea.
  • Lee S; Department of Materials Science and Engineering and Research Institute of Advanced Materials , Seoul National University , Seoul 08826 , Korea.
  • Hwang T; Department of Materials Science and Engineering and Research Institute of Advanced Materials , Seoul National University , Seoul 08826 , Korea.
  • Kim J; Department of Materials Science and Engineering and Research Institute of Advanced Materials , Seoul National University , Seoul 08826 , Korea.
  • Kang J; Department of Materials Science and Engineering and Research Institute of Advanced Materials , Seoul National University , Seoul 08826 , Korea.
  • Choi JP; Department of Mining and Materials Engineering , McGill University , Montreal , Quebec H3A 0C5 , Canada.
  • Nam S; Department of Applied Nano Mechanics, Nano Mechanical Systems Research Division , Korea Institute of Machinery and Materials (KIMM) , Daejeon 34103 , Korea.
  • Park B; Department of Materials Science and Engineering and Research Institute of Advanced Materials , Seoul National University , Seoul 08826 , Korea.
Inorg Chem ; 57(10): 5999-6009, 2018 May 21.
Article en En | MEDLINE | ID: mdl-29714482
In this present work, we report on the synthesis of micron-sized LiMn0.8Fe0.2PO4 (LMFP) mesocrystals via a solvothermal method with varying pH and precursor ratios. The morphologies of resultant LMFP secondary particles are classified into two major classes, flakes and ellipsoids, both of which are featured by the mesocrystalline aggregates where the primary particles constituting LMFP secondary particles are crystallographically aligned. Assessment of the battery performance reveals that the flake-shaped LMFP mesocrystals exhibit a specific capacity and rate capability superior to those of other mesocrystals. The origin of the enhanced electrochemical performance is investigated in terms of primary particle size, pore structure, antisite-defect concentration, and secondary particle shape. It is shown that the shape of the secondary particle has just as much of a significant effect on the battery performance as the crystallite size and antisite defects do. We believe that this work provides a rule of design for electrochemically favorable meso/nanostructures, which is of great potential for improving battery performance by tuning the morphology of particles on multilength scales.

Texto completo: 1 Bases de datos: MEDLINE Idioma: En Revista: Inorg Chem Año: 2018 Tipo del documento: Article

Texto completo: 1 Bases de datos: MEDLINE Idioma: En Revista: Inorg Chem Año: 2018 Tipo del documento: Article