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Development of High-Performance Thermoelectric Materials by Microstructure Control of P-Type BiSbTe Based Alloys Fabricated by Water Atomization

Developing inexpensive and rapid fabrication methods for high efficiency thermoelectric alloys is a crucial challenge for the thermoelectric industry, especially for energy conversion applications. Here, we fabricated large amounts of p-type Cu(0.07)Bi(0.5)Sb(1.5)Te(3) alloys, using water atomizatio...

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Autores principales: Madavali, Babu, Sharief, Pathan, Park, Kyoung-Tae, Song, Gian, Back, Song-Yi, Rhyee, Jong-Soo, Hong, Soon-Jik
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8432709/
https://www.ncbi.nlm.nih.gov/pubmed/34500963
http://dx.doi.org/10.3390/ma14174870
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author Madavali, Babu
Sharief, Pathan
Park, Kyoung-Tae
Song, Gian
Back, Song-Yi
Rhyee, Jong-Soo
Hong, Soon-Jik
author_facet Madavali, Babu
Sharief, Pathan
Park, Kyoung-Tae
Song, Gian
Back, Song-Yi
Rhyee, Jong-Soo
Hong, Soon-Jik
author_sort Madavali, Babu
collection PubMed
description Developing inexpensive and rapid fabrication methods for high efficiency thermoelectric alloys is a crucial challenge for the thermoelectric industry, especially for energy conversion applications. Here, we fabricated large amounts of p-type Cu(0.07)Bi(0.5)Sb(1.5)Te(3) alloys, using water atomization to control its microstructure and improve thermoelectric performance by optimizing its initial powder size. All the water atomized powders were sieved with different aperture sizes, of 32–75 μm, 75–125 μm, 125–200 μm, and <200 μm, and subsequently consolidated using hot pressing at 490 °C. The grain sizes were found to increase with increasing powder particle size, which also increased carrier mobility due to improved carrier transport. The maximum electrical conductivity of 1457.33 Ω(−1) cm(−1) was obtained for the 125–200 μm samples due to their large grain sizes and subsequent high mobility. The Seebeck coefficient slightly increased with decreasing particle size due to scattering of carriers at fine grain boundaries. The higher power factor values of 4.20, 4.22 × 10(−3) W/mk(2) were, respectively, obtained for large powder specimens, such as 125–200 μm and 75–125 μm, due to their higher electrical conductivity. In addition, thermal conductivity increased with increasing particle size due to the improvement in carriers and phonons transport. The 75–125 μm powder specimen exhibited a relatively high thermoelectric figure of merit, ZT of 1.257 due to this higher electric conductivity.
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spelling pubmed-84327092021-09-11 Development of High-Performance Thermoelectric Materials by Microstructure Control of P-Type BiSbTe Based Alloys Fabricated by Water Atomization Madavali, Babu Sharief, Pathan Park, Kyoung-Tae Song, Gian Back, Song-Yi Rhyee, Jong-Soo Hong, Soon-Jik Materials (Basel) Article Developing inexpensive and rapid fabrication methods for high efficiency thermoelectric alloys is a crucial challenge for the thermoelectric industry, especially for energy conversion applications. Here, we fabricated large amounts of p-type Cu(0.07)Bi(0.5)Sb(1.5)Te(3) alloys, using water atomization to control its microstructure and improve thermoelectric performance by optimizing its initial powder size. All the water atomized powders were sieved with different aperture sizes, of 32–75 μm, 75–125 μm, 125–200 μm, and <200 μm, and subsequently consolidated using hot pressing at 490 °C. The grain sizes were found to increase with increasing powder particle size, which also increased carrier mobility due to improved carrier transport. The maximum electrical conductivity of 1457.33 Ω(−1) cm(−1) was obtained for the 125–200 μm samples due to their large grain sizes and subsequent high mobility. The Seebeck coefficient slightly increased with decreasing particle size due to scattering of carriers at fine grain boundaries. The higher power factor values of 4.20, 4.22 × 10(−3) W/mk(2) were, respectively, obtained for large powder specimens, such as 125–200 μm and 75–125 μm, due to their higher electrical conductivity. In addition, thermal conductivity increased with increasing particle size due to the improvement in carriers and phonons transport. The 75–125 μm powder specimen exhibited a relatively high thermoelectric figure of merit, ZT of 1.257 due to this higher electric conductivity. MDPI 2021-08-27 /pmc/articles/PMC8432709/ /pubmed/34500963 http://dx.doi.org/10.3390/ma14174870 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
Madavali, Babu
Sharief, Pathan
Park, Kyoung-Tae
Song, Gian
Back, Song-Yi
Rhyee, Jong-Soo
Hong, Soon-Jik
Development of High-Performance Thermoelectric Materials by Microstructure Control of P-Type BiSbTe Based Alloys Fabricated by Water Atomization
title Development of High-Performance Thermoelectric Materials by Microstructure Control of P-Type BiSbTe Based Alloys Fabricated by Water Atomization
title_full Development of High-Performance Thermoelectric Materials by Microstructure Control of P-Type BiSbTe Based Alloys Fabricated by Water Atomization
title_fullStr Development of High-Performance Thermoelectric Materials by Microstructure Control of P-Type BiSbTe Based Alloys Fabricated by Water Atomization
title_full_unstemmed Development of High-Performance Thermoelectric Materials by Microstructure Control of P-Type BiSbTe Based Alloys Fabricated by Water Atomization
title_short Development of High-Performance Thermoelectric Materials by Microstructure Control of P-Type BiSbTe Based Alloys Fabricated by Water Atomization
title_sort development of high-performance thermoelectric materials by microstructure control of p-type bisbte based alloys fabricated by water atomization
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8432709/
https://www.ncbi.nlm.nih.gov/pubmed/34500963
http://dx.doi.org/10.3390/ma14174870
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