| Literature DB >> 27195427 |
Toshiyuki Matsunaga1, Hideyuki Komatsu1, Keiji Shimoda1, Taketoshi Minato1, Masao Yonemura2, Takashi Kamiyama2, Shunsuke Kobayashi3, Takeharu Kato3, Tsukasa Hirayama3, Yuichi Ikuhara3,4, Hajime Arai1, Yoshio Ukyo1, Yoshiharu Uchimoto5, Zempachi Ogumi1.
Abstract
We examined the crystal structures of Li2(NixMn1-x)O3(-δ) (x = 0, 1/10, 1/6, and 1/4) to elucidate the relationship between the structure and electrochemical performance of the compounds using neutron and synchrotron X-ray powder diffraction analyses in combination. Our examination revealed that these crystals contain a large number of stacking faults and exhibit significant cation mixing in the transition-metal layers; the cation mixing becomes significant with an increase in the Ni concentration. Charge-discharge measurements showed that the replacement of Mn with Ni lowers the potential of the charge plateau and leads to higher charge-discharge capacities. From a topological point of view with regard to the atomic arrangement in the crystals, it is concluded that substituting Mn in Li2MnO3 with Ni promotes the formation of smooth Li percolation paths, thus increasing the number of active Li ions and improving the charge-discharge capacity.Entities:
Year: 2016 PMID: 27195427 DOI: 10.1021/acs.jpclett.6b00587
Source DB: PubMed Journal: J Phys Chem Lett ISSN: 1948-7185 Impact factor: 6.475