Mixed conducting perovskite-like ceramics on the base of lanthanum gallate

被引:18
|
作者
Politova, E. D.
Aleksandrovskii, V. V.
Kaleva, G. M.
Mosunov, A. V.
Suvorkin, S. V.
Zaitsev, S. V.
Sung, J. S.
Choo, K. Y.
Kim, T. H.
机构
[1] L Ya Karpov Inst Phys Chem, Moscow 105064, Russia
[2] Korean Inst Energy Res, Taejon, South Korea
基金
俄罗斯基础研究基金会;
关键词
LaGaO3; solid solutions; mixed ionic-electronic conductivity; oxygen permeability;
D O I
10.1016/j.ssi.2006.05.046
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
Ceramic perovskite solid solutions (La0.9Sr0.1)[(Ga1-xMx)(0.8)Mg-0.2]O3-y, 0 <= x <= 0.5, M = Fe, Ni, Cr (systems I-III) and brownmillerite solid solutions (La0.2Sr1.8)[Ga(Fe1-xMgx)]O5-z, 0 <= x <= 0.5, (system IV) have been prepared. The samples have been studied by X-ray diffraction and electron microscopy methods, dielectric spectroscopy and permeability measurements. The correlation between the composition, unit cell parameter changes, electrical transport and oxygen permeation properties has been revealed. Introduction of transition metals (Fe, Ni, or Cr), substituting for gallium, ensures the enhancement of the electronic constituent of the conductivity in the perovskite systems I-III. Stabilization of the transition metal high valence states 4+ or 5+ has been suggested for compositions I and III. This leads to a unit cell volume contraction and provides a decrease in the concentration of oxygen vacancies. The oxygen permeability reaches its maximum values in compositions I-III with x similar to 0.3. On the contrary, increasing concentration of the doping element with lower valence state (magnesium), substituting for iron, determines the expansion of the brownmillerite unit cell volume and provides an increase of the oxygen vacancy concentration, which in turn, favors the enhancement of oxygen permeability of composition IV (c) 2006 Elsevier B.V. All rights reserved.
引用
收藏
页码:1779 / 1783
页数:5
相关论文
共 50 条
  • [31] Production of Nanocrystalline Ceramics Based on Perovskite-Like Oxides Bi1-xSrxFeO3-
    Lomanova, N. A.
    Osipov, A. V.
    Ugolkov, V. L.
    REFRACTORIES AND INDUSTRIAL CERAMICS, 2020, 60 (05) : 501 - 505
  • [32] Enthalpy stabilization of some perovskite-like oxides
    Reznitskii, LA
    INORGANIC MATERIALS, 1996, 32 (04) : 397 - 402
  • [33] NEW PEROVSKITE-LIKE TRIPLE COPPER OXIDES
    KHARLANOV, AL
    KHASANOVA, NR
    PAROMOVA, MV
    ANTIPOV, EV
    LYKOVA, LN
    KOVBA, LM
    ZHURNAL NEORGANICHESKOI KHIMII, 1990, 35 (12): : 3067 - 3071
  • [34] Structural distortions in families of perovskite-like crystals
    Aleksandrov, KS
    Bartolomé, J
    PHASE TRANSITIONS, 2001, 74 (03) : 255 - 335
  • [35] Studies on Chemical Stability and Electrical Properties of Proton Conducting Perovskite-Like Doped BaCeO3
    Dauter, Jasmine
    Maffei, Nicola
    Bhella, Surinderjit S.
    Thangadurai, Venkataraman
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2010, 157 (10) : B1413 - B1418
  • [36] Electronic, dielectric and optical properties of orthorhombic lanthanum gallate perovskite
    Luo, Bingcheng
    Wang, Xiaohui
    Tian, Enke
    Song, Hongzhou
    Li, Guowu
    Li, Longtu
    JOURNAL OF ALLOYS AND COMPOUNDS, 2017, 708 : 187 - 193
  • [37] The Study of 90° Twinning in Perovskite-like Crystals
    Eknadiosyants, E. I.
    Borodin, V. Z.
    Pinskaya, A. N.
    Eremkin, V. V.
    Smotrakov, V. G.
    CRYSTALLOGRAPHY REPORTS, 1997, 42 (06) : 1029 - 1032
  • [38] A Chiral Dysprosium Perovskite-Like Molecular Ferroelectric
    Wang, Yu-Xia
    Lu, Peipei
    Su, Dan
    Hou, Panzhe
    Dong, Xiaofang
    Min, Hui
    Sun, Young
    Cheng, Peng
    CCS CHEMISTRY, 2024,
  • [39] Lower mantle with silicate perovskite-like structure
    Gupta, AK
    NATIONAL ACADEMY SCIENCE LETTERS-INDIA, 1995, 18 (11-12): : 241 - 245
  • [40] PHYSICOCHEMICAL PROPERTIES OF PEROVSKITE-LIKE CALCIUM TANTALATES
    FEDOROV, NF
    MELNIKOVA, OV
    SMIRNOV, YI
    INORGANIC MATERIALS, 1977, 13 (12) : 1713 - 1716