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Chemical design of oxygen electrodes for solid oxide electrochemical cells: A guide. / Tarutin, Artem P.; Filonova, Elena A.; Ricote, Sandrine и др.
в: Sustainable Energy Technologies and Assessments, Том 57, 103185, 2023.

Результаты исследований: Вклад в журналОбзорная статьяРецензирование

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Tarutin AP, Filonova EA, Ricote S, Medvedev DA, Shao Z. Chemical design of oxygen electrodes for solid oxide electrochemical cells: A guide. Sustainable Energy Technologies and Assessments. 2023;57:103185. doi: 10.1016/j.seta.2023.103185

Author

Tarutin, Artem P. ; Filonova, Elena A. ; Ricote, Sandrine и др. / Chemical design of oxygen electrodes for solid oxide electrochemical cells: A guide. в: Sustainable Energy Technologies and Assessments. 2023 ; Том 57.

BibTeX

@article{68ae81d1d15343b78b5402d58bf197ba,
title = "Chemical design of oxygen electrodes for solid oxide electrochemical cells: A guide",
abstract = "Solid oxide fuel cell (SOFC) and electrolysis cell (SOEC) technologies due to their potential hydrogen and low-carbon energy coincide with an intensive development trajectory for realizing transition to alternative energy policies. Energy conversion processes utilizing such devices include conventional (hydrogen utilization, water electrolysis) tactics, as well as novel approaches, such as CO2-electrolysis, non-oxidative hydrocarbon conversion, ammonia synthesis, etc. This variety of processes is supported by unique combinations of electrolytes with electrodes, which have different properties of catalytic and electrocatalytic activity towards electrochemical oxidation and reduction. To develop high-performance low- and intermediate-temperature SOFCs and SOECs, significant efforts should be focused on overcoming the limitations of oxygen (air/steam) electrodes associated with low oxygen reduction reaction kinetics. In this review, we highlight the most promising structural and chemical strategies to improve the electrochemical performance of oxygen electrodes at reduced operating temperatures. From the viewpoint of the structural strategy, the properties of simple perovskite structures and their layered derivatives are considered; from the viewpoint of the chemical strategy, different modifications of basic complex oxides are briefly discussed. These strategies allow the researchers to analyze the existing chemical engineering facilities and to select more efficient ways for designing modernized compositions of oxygen electrodes. {\textcopyright} 2023 Elsevier Ltd.",
author = "Tarutin, {Artem P.} and Filonova, {Elena A.} and Sandrine Ricote and Medvedev, {Dmitry A.} and Zongping Shao",
note = "This work was supported by the Russian Science Foundation (Project No. 23-23-00083).",
year = "2023",
doi = "10.1016/j.seta.2023.103185",
language = "English",
volume = "57",
journal = "Sustainable Energy Technologies and Assessments",
issn = "2213-1388",
publisher = "Elsevier",

}

RIS

TY - JOUR

T1 - Chemical design of oxygen electrodes for solid oxide electrochemical cells: A guide

AU - Tarutin, Artem P.

AU - Filonova, Elena A.

AU - Ricote, Sandrine

AU - Medvedev, Dmitry A.

AU - Shao, Zongping

N1 - This work was supported by the Russian Science Foundation (Project No. 23-23-00083).

PY - 2023

Y1 - 2023

N2 - Solid oxide fuel cell (SOFC) and electrolysis cell (SOEC) technologies due to their potential hydrogen and low-carbon energy coincide with an intensive development trajectory for realizing transition to alternative energy policies. Energy conversion processes utilizing such devices include conventional (hydrogen utilization, water electrolysis) tactics, as well as novel approaches, such as CO2-electrolysis, non-oxidative hydrocarbon conversion, ammonia synthesis, etc. This variety of processes is supported by unique combinations of electrolytes with electrodes, which have different properties of catalytic and electrocatalytic activity towards electrochemical oxidation and reduction. To develop high-performance low- and intermediate-temperature SOFCs and SOECs, significant efforts should be focused on overcoming the limitations of oxygen (air/steam) electrodes associated with low oxygen reduction reaction kinetics. In this review, we highlight the most promising structural and chemical strategies to improve the electrochemical performance of oxygen electrodes at reduced operating temperatures. From the viewpoint of the structural strategy, the properties of simple perovskite structures and their layered derivatives are considered; from the viewpoint of the chemical strategy, different modifications of basic complex oxides are briefly discussed. These strategies allow the researchers to analyze the existing chemical engineering facilities and to select more efficient ways for designing modernized compositions of oxygen electrodes. © 2023 Elsevier Ltd.

AB - Solid oxide fuel cell (SOFC) and electrolysis cell (SOEC) technologies due to their potential hydrogen and low-carbon energy coincide with an intensive development trajectory for realizing transition to alternative energy policies. Energy conversion processes utilizing such devices include conventional (hydrogen utilization, water electrolysis) tactics, as well as novel approaches, such as CO2-electrolysis, non-oxidative hydrocarbon conversion, ammonia synthesis, etc. This variety of processes is supported by unique combinations of electrolytes with electrodes, which have different properties of catalytic and electrocatalytic activity towards electrochemical oxidation and reduction. To develop high-performance low- and intermediate-temperature SOFCs and SOECs, significant efforts should be focused on overcoming the limitations of oxygen (air/steam) electrodes associated with low oxygen reduction reaction kinetics. In this review, we highlight the most promising structural and chemical strategies to improve the electrochemical performance of oxygen electrodes at reduced operating temperatures. From the viewpoint of the structural strategy, the properties of simple perovskite structures and their layered derivatives are considered; from the viewpoint of the chemical strategy, different modifications of basic complex oxides are briefly discussed. These strategies allow the researchers to analyze the existing chemical engineering facilities and to select more efficient ways for designing modernized compositions of oxygen electrodes. © 2023 Elsevier Ltd.

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UR - https://gateway.webofknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=tsmetrics&SrcApp=tsm_test&DestApp=WOS_CPL&DestLinkType=FullRecord&KeyUT=000968203200001

U2 - 10.1016/j.seta.2023.103185

DO - 10.1016/j.seta.2023.103185

M3 - Review article

VL - 57

JO - Sustainable Energy Technologies and Assessments

JF - Sustainable Energy Technologies and Assessments

SN - 2213-1388

M1 - 103185

ER -

ID: 36569868