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Redox-Promoted Tailoring of the High-Temperature Electrical Performance in Ca(3)Co(4)O(9) Thermoelectric Materials by Metallic Cobalt Addition

This paper reports a novel composite-based processing route for improving the electrical performance of Ca(3)Co(4)O(9) thermoelectric (TE) ceramics. The approach involves the addition of metallic Co, acting as a pore filler on oxidation, and considers two simple sintering schemes. The (1-x)Ca(3)Co(4...

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Autores principales: Constantinescu, Gabriel, Sarabando, Artur R., Rasekh, Shahed, Lopes, Diogo, Sergiienko, Sergii, Amirkhizi, Parisa, Frade, Jorge R., Kovalevsky, Andrei V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7084518/
https://www.ncbi.nlm.nih.gov/pubmed/32120813
http://dx.doi.org/10.3390/ma13051060
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author Constantinescu, Gabriel
Sarabando, Artur R.
Rasekh, Shahed
Lopes, Diogo
Sergiienko, Sergii
Amirkhizi, Parisa
Frade, Jorge R.
Kovalevsky, Andrei V.
author_facet Constantinescu, Gabriel
Sarabando, Artur R.
Rasekh, Shahed
Lopes, Diogo
Sergiienko, Sergii
Amirkhizi, Parisa
Frade, Jorge R.
Kovalevsky, Andrei V.
author_sort Constantinescu, Gabriel
collection PubMed
description This paper reports a novel composite-based processing route for improving the electrical performance of Ca(3)Co(4)O(9) thermoelectric (TE) ceramics. The approach involves the addition of metallic Co, acting as a pore filler on oxidation, and considers two simple sintering schemes. The (1-x)Ca(3)Co(4)O(9)/xCo composites (x = 0%, 3%, 6% and 9% vol.) have been prepared through a modified Pechini method, followed by one- and two-stage sintering, to produce low-density (one-stage, 1ST) and high-density (two-stage, 2ST) ceramic samples. Their high-temperature TE properties, namely the electrical conductivity (σ), Seebeck coefficient (α) and power factor (PF), were investigated between 475 and 975 K, in air flow, and related to their respective phase composition, morphology and microstructure. For the 1ST case, the porous samples (56%–61% of ρth) reached maximum PF values of around 210 and 140 μWm(−1)·K(−2) for the 3% and 6% vol. Co-added samples, respectively, being around two and 1.3 times higher than those of the pure Ca(3)Co(4)O(9) matrix. Although 2ST sintering resulted in rather dense samples (80% of ρth), the efficiency of the proposed approach, in this case, was limited by the complex phase composition of the corresponding ceramics, impeding the electronic transport and resulting in an electrical performance below that measured for the Ca(3)Co(4)O(9) matrix (224 μWm(−1)·K(−2) at 975K).
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spelling pubmed-70845182020-03-24 Redox-Promoted Tailoring of the High-Temperature Electrical Performance in Ca(3)Co(4)O(9) Thermoelectric Materials by Metallic Cobalt Addition Constantinescu, Gabriel Sarabando, Artur R. Rasekh, Shahed Lopes, Diogo Sergiienko, Sergii Amirkhizi, Parisa Frade, Jorge R. Kovalevsky, Andrei V. Materials (Basel) Article This paper reports a novel composite-based processing route for improving the electrical performance of Ca(3)Co(4)O(9) thermoelectric (TE) ceramics. The approach involves the addition of metallic Co, acting as a pore filler on oxidation, and considers two simple sintering schemes. The (1-x)Ca(3)Co(4)O(9)/xCo composites (x = 0%, 3%, 6% and 9% vol.) have been prepared through a modified Pechini method, followed by one- and two-stage sintering, to produce low-density (one-stage, 1ST) and high-density (two-stage, 2ST) ceramic samples. Their high-temperature TE properties, namely the electrical conductivity (σ), Seebeck coefficient (α) and power factor (PF), were investigated between 475 and 975 K, in air flow, and related to their respective phase composition, morphology and microstructure. For the 1ST case, the porous samples (56%–61% of ρth) reached maximum PF values of around 210 and 140 μWm(−1)·K(−2) for the 3% and 6% vol. Co-added samples, respectively, being around two and 1.3 times higher than those of the pure Ca(3)Co(4)O(9) matrix. Although 2ST sintering resulted in rather dense samples (80% of ρth), the efficiency of the proposed approach, in this case, was limited by the complex phase composition of the corresponding ceramics, impeding the electronic transport and resulting in an electrical performance below that measured for the Ca(3)Co(4)O(9) matrix (224 μWm(−1)·K(−2) at 975K). MDPI 2020-02-27 /pmc/articles/PMC7084518/ /pubmed/32120813 http://dx.doi.org/10.3390/ma13051060 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Constantinescu, Gabriel
Sarabando, Artur R.
Rasekh, Shahed
Lopes, Diogo
Sergiienko, Sergii
Amirkhizi, Parisa
Frade, Jorge R.
Kovalevsky, Andrei V.
Redox-Promoted Tailoring of the High-Temperature Electrical Performance in Ca(3)Co(4)O(9) Thermoelectric Materials by Metallic Cobalt Addition
title Redox-Promoted Tailoring of the High-Temperature Electrical Performance in Ca(3)Co(4)O(9) Thermoelectric Materials by Metallic Cobalt Addition
title_full Redox-Promoted Tailoring of the High-Temperature Electrical Performance in Ca(3)Co(4)O(9) Thermoelectric Materials by Metallic Cobalt Addition
title_fullStr Redox-Promoted Tailoring of the High-Temperature Electrical Performance in Ca(3)Co(4)O(9) Thermoelectric Materials by Metallic Cobalt Addition
title_full_unstemmed Redox-Promoted Tailoring of the High-Temperature Electrical Performance in Ca(3)Co(4)O(9) Thermoelectric Materials by Metallic Cobalt Addition
title_short Redox-Promoted Tailoring of the High-Temperature Electrical Performance in Ca(3)Co(4)O(9) Thermoelectric Materials by Metallic Cobalt Addition
title_sort redox-promoted tailoring of the high-temperature electrical performance in ca(3)co(4)o(9) thermoelectric materials by metallic cobalt addition
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7084518/
https://www.ncbi.nlm.nih.gov/pubmed/32120813
http://dx.doi.org/10.3390/ma13051060
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