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Phase composition, electroconductivity, oxygen ion transport number, and microhardness of Ln1 ? xSrxGa0.5 ? y/2Al0.5 ? y/2MgyO3 ? δ (Ln = La, Pr, Nd; x, y = 0.10, 0.15)
Authors:Yu V Danilov  A D Neuimin  L A Dunyushkina  L A Kuz&#;mina  N S Zybko  Z S Martem&#;yanova and A A Pankratov
Institution:(1) Institute of High-Temperature Electrochemistry, Ural Division, Russian Aca56demy of Sciences, ul. S. Kovalevskoi 22, Yekaterinburg, 620219, Russia
Abstract:Phase composition, electroconductivity, oxygen ion transport number, and microhardness of samples of Ln1 − x SrxGa0.5 − y/2Al0.5 − y/2MgyO3 − δ (Ln = La, Pr, Nd; x, y = 0.10, 0.15) synthesized by a ceramic methods are studied. Methods of x-ray diffraction analysis and scanning electron microscopy reveal the La-containing samples to be homogeneous and have a perovskite structure. Magnesium does not dissolve in Pr-and Nd-containing systems but forms an individual phase based on magnesium oxide. Apart from magnesium oxide, in these systems there form extrinsic phases, specifically, LnSrGa3O7 and an unknown phase. The electroconductivity of La1 − x SrxGa1 − y MgyO3 − δ decreases after substituting Al for Ga. Ceramic La1 − x SrxGa0.5 − y/2Al0.5 − y/2MgyO3−δ is a purely ionic conductor in the temperature interval 500 to 1000°C; NdxSrxGa0.5 − y/2Al0.5 − y/2MgyO3 − δ has predominantly ionic conduction; and the predominant type of conduction in Pr1 − x SrxGa0.5 − y/2Al0.5 − y/2MgyO3 − δ is electronic below 700–800°C, with the contribution of ionic conduction increasing at higher temperatures. Substituting Al for Ga raises the hardness of ceramics under study. Among the compositions studied, La0.85Sr0.15Ga0.45Al0.45Mg0.10O3 − δ and La0.85Sr0.15Ga0.425Al0.425Mg0.15O3 − δ exhibit a combination of electroconductivity and hardness that is optimal for application as electrolyte at reduced temperatures (600–800°C). The Pr1 − x SrxGa0.5 − y/2Al0.5 − y/2MgyO3 − δ system possesses mixed ionic-electronic conduction and high hardness, which makes it appealing for application as oxygen-penetrable membranes. Original Russian Text ? Yu.V. Danilov, A.D. Neuimin, L.A. Dunyushkina, L.A. Kuz’mina, N.S. Zybko, Z.S. Martem’yanova, A.A. Pankratov, 2007, published in Elektrokhimiya, 2007, Vol. 43, No. 1, pp. 57–65.
Keywords:doped lanthanum gallate-aluminate  electroconductivity  oxygen ion transport number  microhardness
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