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Composites between Perovskite and Layered Co-Based Oxides for Modification of the Thermoelectric Efficiency

The common approach to modify the thermoelectric activity of oxides is based on the concept of selective metal substitution. Herein, we demonstrate an alternative approach based on the formation of multiphase composites, at which the individual components have distinctions in the electric and therma...

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Autores principales: Harizanova, Sonya, Faulques, Eric, Corraze, Benoit, Payen, Christophe, Zając, Marcin, Wilgocka-Ślęzak, Dorota, Korecki, Józef, Atanasova, Genoveva, Stoyanova, Radostina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8624505/
https://www.ncbi.nlm.nih.gov/pubmed/34832421
http://dx.doi.org/10.3390/ma14227019
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author Harizanova, Sonya
Faulques, Eric
Corraze, Benoit
Payen, Christophe
Zając, Marcin
Wilgocka-Ślęzak, Dorota
Korecki, Józef
Atanasova, Genoveva
Stoyanova, Radostina
author_facet Harizanova, Sonya
Faulques, Eric
Corraze, Benoit
Payen, Christophe
Zając, Marcin
Wilgocka-Ślęzak, Dorota
Korecki, Józef
Atanasova, Genoveva
Stoyanova, Radostina
author_sort Harizanova, Sonya
collection PubMed
description The common approach to modify the thermoelectric activity of oxides is based on the concept of selective metal substitution. Herein, we demonstrate an alternative approach based on the formation of multiphase composites, at which the individual components have distinctions in the electric and thermal conductivities. The proof-of-concept includes the formation of multiphase composites between well-defined thermoelectric Co-based oxides: Ni, Fe co-substituted perovskite, LaCo(0.8)Ni(0.1)Fe(0.1)O(3) (LCO), and misfit layered Ca(3)Co(4)O(9). The interfacial chemical and electrical properties of composites are probed with the means of SEM, PEEM/XAS, and XPS tools, as well as the magnetic susceptibility measurements. The thermoelectric power of the multiphase composites is evaluated by the dimensionless figure of merit, ZT, calculated from the independently measured electrical resistivity (ρ), Seebeck coefficient (S), and thermal conductivity (λ). It has been demonstrated that the magnitude’s electric and thermal conductivities depend more significantly on the composite interfaces than the Seebeck coefficient values. As a result, the highest thermoelectric activity is observed at the composite richer on the perovskite (i.e., ZT = 0.34 at 298 K).
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spelling pubmed-86245052021-11-27 Composites between Perovskite and Layered Co-Based Oxides for Modification of the Thermoelectric Efficiency Harizanova, Sonya Faulques, Eric Corraze, Benoit Payen, Christophe Zając, Marcin Wilgocka-Ślęzak, Dorota Korecki, Józef Atanasova, Genoveva Stoyanova, Radostina Materials (Basel) Article The common approach to modify the thermoelectric activity of oxides is based on the concept of selective metal substitution. Herein, we demonstrate an alternative approach based on the formation of multiphase composites, at which the individual components have distinctions in the electric and thermal conductivities. The proof-of-concept includes the formation of multiphase composites between well-defined thermoelectric Co-based oxides: Ni, Fe co-substituted perovskite, LaCo(0.8)Ni(0.1)Fe(0.1)O(3) (LCO), and misfit layered Ca(3)Co(4)O(9). The interfacial chemical and electrical properties of composites are probed with the means of SEM, PEEM/XAS, and XPS tools, as well as the magnetic susceptibility measurements. The thermoelectric power of the multiphase composites is evaluated by the dimensionless figure of merit, ZT, calculated from the independently measured electrical resistivity (ρ), Seebeck coefficient (S), and thermal conductivity (λ). It has been demonstrated that the magnitude’s electric and thermal conductivities depend more significantly on the composite interfaces than the Seebeck coefficient values. As a result, the highest thermoelectric activity is observed at the composite richer on the perovskite (i.e., ZT = 0.34 at 298 K). MDPI 2021-11-19 /pmc/articles/PMC8624505/ /pubmed/34832421 http://dx.doi.org/10.3390/ma14227019 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Harizanova, Sonya
Faulques, Eric
Corraze, Benoit
Payen, Christophe
Zając, Marcin
Wilgocka-Ślęzak, Dorota
Korecki, Józef
Atanasova, Genoveva
Stoyanova, Radostina
Composites between Perovskite and Layered Co-Based Oxides for Modification of the Thermoelectric Efficiency
title Composites between Perovskite and Layered Co-Based Oxides for Modification of the Thermoelectric Efficiency
title_full Composites between Perovskite and Layered Co-Based Oxides for Modification of the Thermoelectric Efficiency
title_fullStr Composites between Perovskite and Layered Co-Based Oxides for Modification of the Thermoelectric Efficiency
title_full_unstemmed Composites between Perovskite and Layered Co-Based Oxides for Modification of the Thermoelectric Efficiency
title_short Composites between Perovskite and Layered Co-Based Oxides for Modification of the Thermoelectric Efficiency
title_sort composites between perovskite and layered co-based oxides for modification of the thermoelectric efficiency
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8624505/
https://www.ncbi.nlm.nih.gov/pubmed/34832421
http://dx.doi.org/10.3390/ma14227019
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