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Assessment of the Y-doped Ca3Co4O9+δ as cathode material for proton-conducting fuel cells. / Urusova, A.; Bryuzgina, A.; Solomakhina, E. и др.
в: International Journal of Hydrogen Energy, Том 48, № 59, 01.07.2023, стр. 22656-22670.

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Vancouver

Urusova A, Bryuzgina A, Solomakhina E, Kolchugin A, Malyshkin D, Pikalova E и др. Assessment of the Y-doped Ca3Co4O9+δ as cathode material for proton-conducting fuel cells. International Journal of Hydrogen Energy. 2023 июль 1;48(59):22656-22670. doi: 10.1016/j.ijhydene.2023.02.098

Author

Urusova, A. ; Bryuzgina, A. ; Solomakhina, E. и др. / Assessment of the Y-doped Ca3Co4O9+δ as cathode material for proton-conducting fuel cells. в: International Journal of Hydrogen Energy. 2023 ; Том 48, № 59. стр. 22656-22670.

BibTeX

@article{e3921c6642ee4181b3a4b41d730d1409,
title = "Assessment of the Y-doped Ca3Co4O9+δ as cathode material for proton-conducting fuel cells",
abstract = "This work presents the investigation of functional properties of the yttrium-doped Ca3Co4O9+δ complex oxides as the prospective cathode materials for the proton-conducting fuel cells. The phase equilibria in the ½Y2O3–CaO–⅓Co3O4 system at 900 °C in air is experimentally observed, and the phase diagram is constructed. The misfit-layered structure of the Ca3-kYkCo4O9+δ solid solutions, and their chemical compatibility in air with proton-conducting electrolytes BaCe0.7 Ba3Ca1.18Nb1.82O8.73 are established. Functional properties of the obtained Ca3-kYkCo4O9+δ materials have been studied. The oxygen non-stoichiometry values of δ at room temperature are equal to 0.48 and 0.62 for Ca2.5Y0.5Co4O9+δ and Ca2YCo4O9+δ, respectively. The electrical conductivity in air reaches maximum value of 32 S cm−1 at 800 °C for Ca2.5Y0.5Co4O9+δ. The values of linear thermal expansion coefficient for Ca2.5Y0.5Co4O9+δ and Ca2YCo4O9+δ are equal to 13.5 × 10−6 and 14 × 10−6 K−1 in the temperature range of 25–800 °C in air. Minimum value of the polarization resistance Rp of 0.86 Ω cm2 at 600 °C is observed for the Ca2YCo4O9+δ electrode on the BaCe0.7Zr0.1Y0.1Yb0.1O3-δ substrate. Results of the work demonstrate that Y-doping of Ca3Co4O9+δ can be recommended as the successful strategy for the enhancement of the electrochemical performance of the cathodes, based on Ca3Co4O9+δ, in the solid oxide fuel cells with the proton-conducting electrolytes.",
author = "A. Urusova and A. Bryuzgina and E. Solomakhina and A. Kolchugin and D. Malyshkin and E. Pikalova and E. Filonova",
note = "The research funding from the Ministry of Science and Higher Education of the Russian Federation (Ural Federal University Program of Development within the Priority-2030 Program) is gratefully acknowledged.",
year = "2023",
month = jul,
day = "1",
doi = "10.1016/j.ijhydene.2023.02.098",
language = "English",
volume = "48",
pages = "22656--22670",
journal = "International Journal of Hydrogen Energy",
issn = "0360-3199",
publisher = "Elsevier",
number = "59",

}

RIS

TY - JOUR

T1 - Assessment of the Y-doped Ca3Co4O9+δ as cathode material for proton-conducting fuel cells

AU - Urusova, A.

AU - Bryuzgina, A.

AU - Solomakhina, E.

AU - Kolchugin, A.

AU - Malyshkin, D.

AU - Pikalova, E.

AU - Filonova, E.

N1 - The research funding from the Ministry of Science and Higher Education of the Russian Federation (Ural Federal University Program of Development within the Priority-2030 Program) is gratefully acknowledged.

PY - 2023/7/1

Y1 - 2023/7/1

N2 - This work presents the investigation of functional properties of the yttrium-doped Ca3Co4O9+δ complex oxides as the prospective cathode materials for the proton-conducting fuel cells. The phase equilibria in the ½Y2O3–CaO–⅓Co3O4 system at 900 °C in air is experimentally observed, and the phase diagram is constructed. The misfit-layered structure of the Ca3-kYkCo4O9+δ solid solutions, and their chemical compatibility in air with proton-conducting electrolytes BaCe0.7 Ba3Ca1.18Nb1.82O8.73 are established. Functional properties of the obtained Ca3-kYkCo4O9+δ materials have been studied. The oxygen non-stoichiometry values of δ at room temperature are equal to 0.48 and 0.62 for Ca2.5Y0.5Co4O9+δ and Ca2YCo4O9+δ, respectively. The electrical conductivity in air reaches maximum value of 32 S cm−1 at 800 °C for Ca2.5Y0.5Co4O9+δ. The values of linear thermal expansion coefficient for Ca2.5Y0.5Co4O9+δ and Ca2YCo4O9+δ are equal to 13.5 × 10−6 and 14 × 10−6 K−1 in the temperature range of 25–800 °C in air. Minimum value of the polarization resistance Rp of 0.86 Ω cm2 at 600 °C is observed for the Ca2YCo4O9+δ electrode on the BaCe0.7Zr0.1Y0.1Yb0.1O3-δ substrate. Results of the work demonstrate that Y-doping of Ca3Co4O9+δ can be recommended as the successful strategy for the enhancement of the electrochemical performance of the cathodes, based on Ca3Co4O9+δ, in the solid oxide fuel cells with the proton-conducting electrolytes.

AB - This work presents the investigation of functional properties of the yttrium-doped Ca3Co4O9+δ complex oxides as the prospective cathode materials for the proton-conducting fuel cells. The phase equilibria in the ½Y2O3–CaO–⅓Co3O4 system at 900 °C in air is experimentally observed, and the phase diagram is constructed. The misfit-layered structure of the Ca3-kYkCo4O9+δ solid solutions, and their chemical compatibility in air with proton-conducting electrolytes BaCe0.7 Ba3Ca1.18Nb1.82O8.73 are established. Functional properties of the obtained Ca3-kYkCo4O9+δ materials have been studied. The oxygen non-stoichiometry values of δ at room temperature are equal to 0.48 and 0.62 for Ca2.5Y0.5Co4O9+δ and Ca2YCo4O9+δ, respectively. The electrical conductivity in air reaches maximum value of 32 S cm−1 at 800 °C for Ca2.5Y0.5Co4O9+δ. The values of linear thermal expansion coefficient for Ca2.5Y0.5Co4O9+δ and Ca2YCo4O9+δ are equal to 13.5 × 10−6 and 14 × 10−6 K−1 in the temperature range of 25–800 °C in air. Minimum value of the polarization resistance Rp of 0.86 Ω cm2 at 600 °C is observed for the Ca2YCo4O9+δ electrode on the BaCe0.7Zr0.1Y0.1Yb0.1O3-δ substrate. Results of the work demonstrate that Y-doping of Ca3Co4O9+δ can be recommended as the successful strategy for the enhancement of the electrochemical performance of the cathodes, based on Ca3Co4O9+δ, in the solid oxide fuel cells with the proton-conducting electrolytes.

UR - http://www.scopus.com/inward/record.url?partnerID=8YFLogxK&scp=85150030547

UR - https://gateway.webofknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=tsmetrics&SrcApp=tsm_test&DestApp=WOS_CPL&DestLinkType=FullRecord&KeyUT=001032794900001

U2 - 10.1016/j.ijhydene.2023.02.098

DO - 10.1016/j.ijhydene.2023.02.098

M3 - Article

VL - 48

SP - 22656

EP - 22670

JO - International Journal of Hydrogen Energy

JF - International Journal of Hydrogen Energy

SN - 0360-3199

IS - 59

ER -

ID: 40644579