A novel layered lithium niobium titanate as battery anode material: Crystal structure and charge-discharge properties

被引:8
|
作者
Catti, Michele [1 ]
Pinus, Ilya [1 ]
Ruffo, Riccardo [1 ]
Salamone, Matteo M. [1 ]
Mari, Claudio M. [1 ]
机构
[1] Univ Milan, Dipartimento Sci Mat, Via Cozzi 55, I-20125 Milan, Italy
关键词
LiTi2NbO7; Anode material; Neutron diffraction; Lithium ion batteries; NEUTRON-DIFFRACTION; TINB2O7; ANODE; INSERTION; OXIDES; ELECTROCHEMISTRY; INTERCALATION; LITI2O4; SPINEL; ENERGY;
D O I
10.1016/j.ssi.2016.08.001
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
LiTi2NbO7 was synthesized from CsTi2NbO7 by direct Cs+/Li+ ion exchange and subsequent thermal decomposition of the hydrated form. Neutron powder diffraction data were collected at high-resolution (ILL, France) and analyzed by Rietveld refinements and Fourier difference techniques, revealing a layer-like crystal structure (orthorhombic Pbnm, a = 9.2476(6), b = 16.955(2), c = 3.7542(2) angstrom) partly similar to that of monoclinic LiTi3O7. Lithium is tetrahedrically coordinated and bridges adjacent layers of (Ti,Nb)O-6 octahedra. Nb atoms are strongly ordered in one of the three independent sites available for Ti/Nb, thus compensating for the unbalance of negative charge from the surrounding 0 atoms. Electrochemical measurements were performed on a LiTi2NbO7 electrode vs. Li/Li+ couple. Overlapping Ti4+/Ti3+ and Nb5+/Nb4+ redox processes occur around 1.4 V, with a specific charge of 245 mAh/g (about 2.8 electrons per f.u.) in the 230 to 1.15 V range. Charge-discharge cycling results show a reversible and stable specific capacity of 220 mAh/g at low current density, indicating that this material is a promising alternative to Li4Ti5O12 spinel for reversible anode applications in lithium batteries. (C) 2016 Elsevier B.V. All rights reserved.
引用
收藏
页码:72 / 77
页数:6
相关论文
共 50 条
  • [31] Niobium doped lithium titanate as a high rate anode material for Li-ion batteries
    Tian, Bingbing
    Xiang, Hongfa
    Zhang, Le
    Li, Zhong
    Wang, Haihui
    ELECTROCHIMICA ACTA, 2010, 55 (19) : 5453 - 5458
  • [32] Dependence of Li content on crystal structure during the charge-discharge process of LiMn1.5Ni0.5O4 as a cathode material for 5 V class lithium secondary battery
    Idemoto, Y
    Sekine, H
    Ui, K
    Koura, N
    ELECTROCHEMISTRY, 2003, 71 (12) : 1142 - 1144
  • [33] Preparation and charge-discharge properties of a novel organosulfur polymer, poly(p-phenylene thiuret), for battery applications
    Uemachi, H
    Iwasa, Y
    Mitani, T
    CHEMISTRY LETTERS, 2000, (08) : 946 - 947
  • [34] A STUDY OF THE CHARGE-DISCHARGE CHARACTERISTICS OF THE LITHIUM-POLYACETYLENE BATTERY BY MEANS OF THE FFT IMPEDANCE MEASUREMENT
    OSAKA, T
    KITAI, T
    BULLETIN OF THE CHEMICAL SOCIETY OF JAPAN, 1984, 57 (12) : 3386 - 3390
  • [35] Effect of Ru substitution on the first charge-discharge cycle of lithium-rich layered oxides
    Knight, James C.
    Nandakumar, Pat
    Kan, Wang Hay
    Manthiram, Arumugam
    JOURNAL OF MATERIALS CHEMISTRY A, 2015, 3 (05) : 2006 - 2011
  • [36] Prediction model of thermal behavior of lithium battery module under high charge-discharge rate
    Zhang, Yong
    Liu, He
    Liu, Shuichang
    Pan, Shengong
    Tian, Chengchun
    Hu, Jian
    JOURNAL OF ENERGY STORAGE, 2023, 74
  • [37] Charge-Discharge Performance of a Novel Undivided Redox Flow Battery for Renewable Energy Storage
    Chakrabarti, Mohammed Harun
    Roberts, Edward Pelham Lindfield
    Saleem, Muhammad
    INTERNATIONAL JOURNAL OF GREEN ENERGY, 2010, 7 (04) : 445 - 460
  • [38] Layered hydrogen titanate nanowires with novel lithium intercalation properties
    Li, JR
    Tang, ZL
    Zhang, ZT
    CHEMISTRY OF MATERIALS, 2005, 17 (23) : 5848 - 5855
  • [39] Structure and Electrochemical Charge-Discharge Properties of Ni–Co–C Nanocomposites
    Kh. I. Vlad
    Yu. I. Verbovytskyy
    V. M. Bogatyrov
    I. Yu. Zavaliy
    Materials Science, 2023, 58 : 788 - 794