The formation and migration of non-equivalent oxygen vacancies in PrBaCoMO, where M = Fe, Co, Ni and Cu

The ab initio calculated defect formation energies are used for assessment of high-temperature thermodynamic functions that govern the appearance of oxygen vacancies in PrBaCo 2− x M x O 6−δ , where M = Fe, Co, Ni and Cu. The free energy of oxygen vacancy formation is shown to depend on the dopant a...

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Veröffentlicht in:Physical chemistry chemical physics : PCCP 2021-01, Vol.23 (3), p.2313-2319
Hauptverfasser: Zhukov, V. P, Chulkov, E. V, Politov, B. V, Suntsov, A. Yu, Kozhevnikov, V. L
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container_issue 3
container_start_page 2313
container_title Physical chemistry chemical physics : PCCP
container_volume 23
creator Zhukov, V. P
Chulkov, E. V
Politov, B. V
Suntsov, A. Yu
Kozhevnikov, V. L
description The ab initio calculated defect formation energies are used for assessment of high-temperature thermodynamic functions that govern the appearance of oxygen vacancies in PrBaCo 2− x M x O 6−δ , where M = Fe, Co, Ni and Cu. The free energy of oxygen vacancy formation is shown to depend on the dopant and total oxygen content in the cobaltite. The experimentally observed trend for the oxygen vacancy concentration to increase with the atomic number of 3d dopants from Fe to Cu is explained as a result of the decrease of bond strength. The preferable location of oxygen vacancies near impurity atoms is accompanied by an anisotropic redistribution of electronic charge density. The most pronounced development of this effect in the case of iron doping leads to a low probability of tetrahedrally coordinated iron to exist in the layered cobaltites. It is shown that the calculated enthalpies of defect formation satisfactorily explain the experimentally observed changes of oxygen non-stoichiometry in the doped cobaltite. The energy barriers for oxygen jumps are found to vary only weakly at the doping thus suggesting rather insignificant dependence of the oxygen ion conductivity on 3d dopant nature. The earlier findings and results in the present work are indicative of promising properties combination in PrBaCo 2− x Ni x O 6−δ for the application as an electrode material in IT-SOFCs. The ab initio calculated defect formation energies are used for assessment of high-temperature thermodynamic functions that govern the appearance of oxygen vacancies in PrBaCo 2− x M x O 6−δ .
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It is shown that the calculated enthalpies of defect formation satisfactorily explain the experimentally observed changes of oxygen non-stoichiometry in the doped cobaltite. The energy barriers for oxygen jumps are found to vary only weakly at the doping thus suggesting rather insignificant dependence of the oxygen ion conductivity on 3d dopant nature. The earlier findings and results in the present work are indicative of promising properties combination in PrBaCo 2− x Ni x O 6−δ for the application as an electrode material in IT-SOFCs. 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The most pronounced development of this effect in the case of iron doping leads to a low probability of tetrahedrally coordinated iron to exist in the layered cobaltites. It is shown that the calculated enthalpies of defect formation satisfactorily explain the experimentally observed changes of oxygen non-stoichiometry in the doped cobaltite. The energy barriers for oxygen jumps are found to vary only weakly at the doping thus suggesting rather insignificant dependence of the oxygen ion conductivity on 3d dopant nature. The earlier findings and results in the present work are indicative of promising properties combination in PrBaCo 2− x Ni x O 6−δ for the application as an electrode material in IT-SOFCs. 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title The formation and migration of non-equivalent oxygen vacancies in PrBaCoMO, where M = Fe, Co, Ni and Cu
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