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A brief review of conductivity and thermal expansion of perovskite-related oxides for SOFC cathode
Author(s) -
А. В. Никонов,
К. А. Кутербеков,
Кенжебатыр Бекмырза,
Н. Б. Павздерин
Publication year - 2018
Publication title -
eurasian journal of physics and functional materials
Language(s) - English
Resource type - Journals
eISSN - 2616-8537
pISSN - 2522-9869
DOI - 10.29317/ejpfm.2018020309
Subject(s) - perovskite (structure) , brownmillerite , thermal expansion , materials science , thermal conductivity , ionic conductivity , cathode , conductivity , oxide , ionic bonding , solid oxide fuel cell , electrical resistivity and conductivity , mineralogy , inorganic chemistry , ion , composite material , chemistry , anode , metallurgy , crystallography , electrode , physics , organic chemistry , electrolyte , quantum mechanics
Cathode materials with mixed ion-electron conductivity (MIEC) are necessary for the development of low or intermediate temperature solid oxide fuel cells. Perovskite and perovskite-related materials are promising candidates on this role. In the review the conductivity and the thermal expansion of materials with various types of perovskite-related structures such as pure perovskite, double perovskite, brownmillerite and Ruddlesden-Popper phases have been compared. And the literature data on the values of the electronic and ionic conductivities, the oxygen diffusion coefficient, and the thermal expansion coefficient of various compositions have been collected. It was shown that the disordered cubic perovskites possess the higher electronic conductivity whereas the layered perovskites and materials with the Ruddlesden-Popper structure have higher ionic conductivity and lower value of thermal expansion.

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