Lithium Insertion into Li2MoO4: Reversible Formation of (Li3Mo)O4 with a Disordered Rock-Salt Structure

被引:28
|
作者
Mikhailova, D. [1 ,2 ,3 ]
Voss, A. [2 ]
Oswald, S. [2 ]
Tsirlin, A. A. [4 ]
Schmidt, M. [3 ]
Senyshyn, A. [5 ]
Eckert, J. [2 ,6 ]
Ehrenberg, H. [1 ]
机构
[1] KIT, IAM, D-76344 Eggenstein Leopoldshafen, Baden Wurttembe, Germany
[2] IFW Dresden, Inst Complex Mat, D-01069 Dresden, Saxony, Germany
[3] Max Planck Inst Chem Phys Solids, D-01187 Dresden, Saxony, Germany
[4] NICPB, EE-12618 Tallinn, Estonia
[5] Tech Univ Munich, Forsch Neutronenquelle Heinz Maier Leibnitz FRM 2, D-85747 Garching, Bavaria, Germany
[6] Tech Univ Dresden, Inst Mat Sci, D-01062 Dresden, Saxony, Germany
关键词
POWDER DIFFRACTOMETER; METAL-OXIDES; IN-SITU; INTERCALATION; DIFFRACTION; MECHANISMS; REDUCTION; ELECTRODE; GAMMA;
D O I
10.1021/acs.chemmater.5b01633
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
During Li-insertion in some complex transition metal molybdates with a NASICON structure, which serve as cathodes in Li-ion rechargeable cells, a formation of a cubic rock-salt-type phase was often detected between 1 and 2 V vs Li+/Li. Detailed information about elemental composition and stability of this compound was missing, and suggestions were made toward a solid solution composed of lithium oxide and two-valence transition metal oxide MO with M a 3d element. In the present work, we showed that Li2MoO4 with a phenacite-type structure without any additional transition metal can reversibly accommodate Li-ions at room temperature with the formation of the NaCl-type compound. Reversible Li-incorporation into the Li2MoO4 structure is accompanied by a reduction of Mo ions and changes in their oxygen coordination. Li-ions are shifted from a tetrahedral to an octahedral site, resulting in the formation of a cubic (Li3Mo)O-4 framework with a random distribution of Li and Mo on one site. This mixed occupancy is remarkable because of significant charge and size differences between Li+ and Mo5+. The novel compound shows Li-deficiency at least up to x(Li) = 0.2, which can be deduced from charge flow in the galvanostatic cycling of the electrochemical cells with a (Li3Mo)O-4 cathode between 1.5 and 2.75 V vs Li+/Li. An increase in the cell potential above 3 V leads to the oxidation of (Li3Mo)O-4 back to Li2MoO4 with phenacite-type structure. The reaction of (Li3Mo)O-4 to Li2MoO4 also occurs upon a short exposure to air.
引用
收藏
页码:4485 / 4492
页数:8
相关论文
共 50 条
  • [41] Electrochemical Li+ insertion capabilities of Na4-xCo3(PO4)2P2O7 and its application to novel hybrid-ion batteries
    Nose, Masafumi
    Nobuhara, Kunihiro
    Shiotani, Shinya
    Nakayama, Hideki
    Nakanishi, Shinji
    Iba, Hideki
    RSC ADVANCES, 2014, 4 (18): : 9044 - 9047
  • [42] Solid-state synthesis of submicron-sized Li4Ti5O12/Li2TiO3 composites with rich grain boundaries for lithium ion batteries
    Wang, Ying
    Zhou, Aijun
    Dai, Xinyi
    Feng, Lidong
    Li, Jianwen
    Li, Jingze
    JOURNAL OF POWER SOURCES, 2014, 266 : 114 - 120
  • [43] Li4/3Ni1/3Mo1/3O2 - LiNi1/2Mn1/2O2 Binary System as High Capacity Positive Electrode Materials for Rechargeable Lithium Batteries
    Zhao, Wenwen
    Yamaguchi, Kazuma
    Sato, Takahito
    Yabuuchi, Naoaki
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2018, 165 (07) : A1357 - A1362
  • [44] Towards high performance lithium-oxygen batteries: Co3O4-NiO heterostructure induced preferential growth of ultrathin Li2O2 film
    Dong, Ji-Jun
    Ma, Chao
    Zhang, Qiang
    Bai, Wen-Long
    Cai, Zhi-Peng
    Li, Se-Si
    Zhang, Zhen
    Wu, Xue-Yan
    Wei, Xiao
    Wang, Kai-Xue
    Chen, Jie-Sheng
    JOURNAL OF ALLOYS AND COMPOUNDS, 2021, 863
  • [45] Lithium nickel cobalt oxides synthesized from Li2CO3, NiO and Co3O4 by the solid-state reaction method
    Bang, Eui Yong
    Mumm, Daniel R.
    Park, Hye Ryoung
    Song, Myoung Youp
    CERAMICS INTERNATIONAL, 2012, 38 (05) : 3635 - 3641
  • [46] Synthesis and electrochemical properties of Li3V2 (PO4)3-V2O3/C as anode material for lithium-ion battery application
    Zhang, Yanqing
    Feng, Chuanqi
    Zhang, Yimin
    Wu, Huimin
    Wang, Shiquan
    IONICS, 2019, 25 (11) : 5617 - 5623
  • [47] An investigation of Li0.6Na2.4V2(PO4)2F3 cathode with NASICON structure in lithium-ion battery
    Feng, Qiuju
    Peng, Kang
    Huang, Zhenjun
    Yan, Wenbin
    Tang, Shi
    Liu, Qingshan
    JOURNAL OF POWER SOURCES, 2015, 280 : 703 - 709
  • [48] Atomistic Simulation Study of Monoclinic Li3V2(PO4)3 as a Cathode Material for Lithium Ion Battery: Structure, Defect Chemistry, Lithium Ion Transport Pathway, and Dynamics
    Lee, Sanghun
    Park, Sung Soo
    JOURNAL OF PHYSICAL CHEMISTRY C, 2012, 116 (48) : 25190 - 25197
  • [49] TOPOLOGICAL FEATURES OF BOROPHOSPHATES WITH MIXED FRAMEWORKS: SYNTHESIS, CRYSTAL STRUCTURE OF FIRST ALUMINUM AND LITHIUM BOROPHOSPHATE Li3{Al2[BP4O16]}•2H2O AND COMPARATIVE CRYSTAL CHEMISTRY
    Aksenov, S. M.
    Yamnova, N. A.
    Borovikova, E. Yu.
    Stefanovich, S. Yu.
    Volkov, A. S.
    Deineko, D. V.
    Dimitrova, O. V.
    Gurbanova, O. A.
    Hixon, A. E.
    Krivovichev, S. V.
    JOURNAL OF STRUCTURAL CHEMISTRY, 2020, 61 (11) : 1760 - 1785
  • [50] Comparison of lithium nickel cobalt oxides synthesized from NiO, Co3O4, and LiOH•H2O or Li2CO3 by solid-state reaction method
    Bang, Eui Yong
    Mumm, Daniel R.
    Park, Hye Ryoung
    Song, Myoung Youp
    CERAMICS INTERNATIONAL, 2012, 38 (07) : 5699 - 5705