Unlocking the potential of weberite-type metal fluorides in electrochemical energy storage

被引:0
|
作者
Holger Euchner
Oliver Clemens
M. Anji Reddy
机构
[1] Helmholtz Institute Ulm (HIU) Electrochemical Energy Storage,Materials Design by Synthesis
[2] Technical University Darmstadt,Karlsruhe Institute of Technology
[3] Institute of Nanotechnology,undefined
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Sodium-ion batteries (NIBs) are a front-runner among the alternative battery technologies suggested for substituting the state-of-the-art lithium-ion batteries (LIBs). The specific energy of Na-ion batteries is significantly lower than that of LIBs, which is mainly due to the lower operating potentials and higher molecular weight of sodium insertion cathode materials. To compete with the high energy density of LIBs, high voltage cathode materials are required for NIBs. Here we report a theoretical investigation on weberite-type sodium metal fluorides (SMFs), a new class of high voltage and high energy density materials which are so far unexplored as cathode materials for NIBs. The weberite structure type is highly favorable for sodium-containing transition metal fluorides, with a large variety of transition metal combinations (M, M’) adopting the corresponding Na2MM’F7 structure. A series of known and hypothetical compounds with weberite-type structure were computationally investigated to evaluate their potential as cathode materials for NIBs. Weberite-type SMFs show two-dimensional pathways for Na+ diffusion with surprisingly low activation barriers. The high energy density combined with low diffusion barriers for Na+ makes this type of compounds promising candidates for cathode materials in NIBs.
引用
收藏
相关论文
共 50 条
  • [1] Unlocking the potential of weberite-type metal fluorides in electrochemical energy storage
    Euchner, Holger
    Clemens, Oliver
    Reddy, M. Anji
    NPJ COMPUTATIONAL MATERIALS, 2019, 5 (1)
  • [2] Electrochemical synthesis and potential electrochemical energy storage performance of nodule-type polyaniline
    Navale, Y. H.
    Navale, S. T.
    Chougule, M. A.
    Ingole, S. M.
    Stadler, F. J.
    Mane, Rajaram S.
    Naushad, Mu.
    Patil, V. B.
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2017, 487 : 458 - 464
  • [3] Conversion Materials for Energy Storage: Complex Hydrides, Metal Fluorides
    Fichtner, Maximilian
    CHEMIE IN UNSERER ZEIT, 2013, 47 (04) : 230 - 238
  • [4] Perovskite fluorides for electrochemical energy storage and conversion: Structure, performance and mechanisms
    Li, Yi
    Ding, Rui
    NANO ENERGY, 2024, 124
  • [5] Unlocking the potential of underground hydrogen storage for clean energy solutions
    Dodangoda, Chatura
    Ranjith, P. G.
    Haque, A.
    GEOMECHANICS AND GEOPHYSICS FOR GEO-ENERGY AND GEO-RESOURCES, 2024, 10 (01)
  • [6] Transition metal oxides for electrochemical energy storage
    Dobson, Peter J.
    CONTEMPORARY PHYSICS, 2023, 64 (01) : 87 - 88
  • [7] Chemistry and potential candidature of metal-organic frameworks for electrochemical energy storage devices
    Mageto, Teddy
    Souza, Felipe M. de
    Kaur, Jasvinder
    Kumar, Anuj
    Gupta, Ram K.
    FUEL PROCESSING TECHNOLOGY, 2023, 242
  • [8] Unlocking the energy storage potential of polypyrrole via electrochemical graphene oxide for high performance zinc-ion hybrid supercapacitors
    Yang, Jie
    Cao, Jianyun
    Peng, Yudong
    Bissett, Mark
    Kinloch, Ian A.
    Dryfe, Robert A. W.
    JOURNAL OF POWER SOURCES, 2021, 516
  • [9] Nanoporous metal by dealloying for electrochemical energy conversion and storage
    Chen, Qing
    Ding, Yi
    Chen, Mingwei
    MRS BULLETIN, 2018, 43 (01) : 43 - 48
  • [10] Application of Liquid Metal Electrodes in Electrochemical Energy Storage
    Peng, Jian
    Li, Hong
    Chen, Liquan
    Wu, Fan
    PRECISION CHEMISTRY, 2023, 1 (08): : 452 - 467