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Effect of Substitutional Pb Doping on Bipolar and Lattice Thermal Conductivity in p-Type Bi(0.48)Sb(1.52)Te(3)

Cation substitutional doping is an effective approach to modifying the electronic and thermal transports in Bi(2)Te(3)-based thermoelectric alloys. Here we present a comprehensive analysis of the electrical and thermal conductivities of polycrystalline Pb-doped p-type bulk Bi(0.48)Sb(1.52)Te(3). Pb...

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Autores principales: Kim, Hyun-sik, Lee, Kyu Hyoung, Yoo, Joonyeon, Youn, Jehun, Roh, Jong Wook, Kim, Sang-il, Kim, Sung Wng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5551806/
https://www.ncbi.nlm.nih.gov/pubmed/28773118
http://dx.doi.org/10.3390/ma10070763
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author Kim, Hyun-sik
Lee, Kyu Hyoung
Yoo, Joonyeon
Youn, Jehun
Roh, Jong Wook
Kim, Sang-il
Kim, Sung Wng
author_facet Kim, Hyun-sik
Lee, Kyu Hyoung
Yoo, Joonyeon
Youn, Jehun
Roh, Jong Wook
Kim, Sang-il
Kim, Sung Wng
author_sort Kim, Hyun-sik
collection PubMed
description Cation substitutional doping is an effective approach to modifying the electronic and thermal transports in Bi(2)Te(3)-based thermoelectric alloys. Here we present a comprehensive analysis of the electrical and thermal conductivities of polycrystalline Pb-doped p-type bulk Bi(0.48)Sb(1.52)Te(3). Pb doping significantly increased the electrical conductivity up to ~2700 S/cm at x = 0.02 in Bi(0.48-x)Pb(x)Sb(1.52)Te(3) due to the increase in hole carrier concentration. Even though the total thermal conductivity increased as Pb was added, due to the increased hole carrier concentration, the thermal conductivity was reduced by 14–22% if the contribution of the increased hole carrier concentration was excluded. To further understand the origin of reduction in the thermal conductivity, we first estimated the contribution of bipolar conduction to thermal conductivity from a two-parabolic band model, which is an extension of the single parabolic band model. Thereafter, the contribution of additional point defect scattering caused by Pb substitution (Pb in the cation site) was analyzed using the Debye–Callaway model. We found that Pb doping significantly suppressed both the bipolar thermal conduction and lattice thermal conductivity simultaneously, while the bipolar contribution to the total thermal conductivity reduction increased at high temperatures. At Pb doping of x = 0.02, the bipolar thermal conductivity decreased by ~30% from 0.47 W/mK to 0.33 W/mK at 480 K, which accounts for 70% of the total reduction.
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spelling pubmed-55518062017-08-11 Effect of Substitutional Pb Doping on Bipolar and Lattice Thermal Conductivity in p-Type Bi(0.48)Sb(1.52)Te(3) Kim, Hyun-sik Lee, Kyu Hyoung Yoo, Joonyeon Youn, Jehun Roh, Jong Wook Kim, Sang-il Kim, Sung Wng Materials (Basel) Article Cation substitutional doping is an effective approach to modifying the electronic and thermal transports in Bi(2)Te(3)-based thermoelectric alloys. Here we present a comprehensive analysis of the electrical and thermal conductivities of polycrystalline Pb-doped p-type bulk Bi(0.48)Sb(1.52)Te(3). Pb doping significantly increased the electrical conductivity up to ~2700 S/cm at x = 0.02 in Bi(0.48-x)Pb(x)Sb(1.52)Te(3) due to the increase in hole carrier concentration. Even though the total thermal conductivity increased as Pb was added, due to the increased hole carrier concentration, the thermal conductivity was reduced by 14–22% if the contribution of the increased hole carrier concentration was excluded. To further understand the origin of reduction in the thermal conductivity, we first estimated the contribution of bipolar conduction to thermal conductivity from a two-parabolic band model, which is an extension of the single parabolic band model. Thereafter, the contribution of additional point defect scattering caused by Pb substitution (Pb in the cation site) was analyzed using the Debye–Callaway model. We found that Pb doping significantly suppressed both the bipolar thermal conduction and lattice thermal conductivity simultaneously, while the bipolar contribution to the total thermal conductivity reduction increased at high temperatures. At Pb doping of x = 0.02, the bipolar thermal conductivity decreased by ~30% from 0.47 W/mK to 0.33 W/mK at 480 K, which accounts for 70% of the total reduction. MDPI 2017-07-06 /pmc/articles/PMC5551806/ /pubmed/28773118 http://dx.doi.org/10.3390/ma10070763 Text en © 2017 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
Kim, Hyun-sik
Lee, Kyu Hyoung
Yoo, Joonyeon
Youn, Jehun
Roh, Jong Wook
Kim, Sang-il
Kim, Sung Wng
Effect of Substitutional Pb Doping on Bipolar and Lattice Thermal Conductivity in p-Type Bi(0.48)Sb(1.52)Te(3)
title Effect of Substitutional Pb Doping on Bipolar and Lattice Thermal Conductivity in p-Type Bi(0.48)Sb(1.52)Te(3)
title_full Effect of Substitutional Pb Doping on Bipolar and Lattice Thermal Conductivity in p-Type Bi(0.48)Sb(1.52)Te(3)
title_fullStr Effect of Substitutional Pb Doping on Bipolar and Lattice Thermal Conductivity in p-Type Bi(0.48)Sb(1.52)Te(3)
title_full_unstemmed Effect of Substitutional Pb Doping on Bipolar and Lattice Thermal Conductivity in p-Type Bi(0.48)Sb(1.52)Te(3)
title_short Effect of Substitutional Pb Doping on Bipolar and Lattice Thermal Conductivity in p-Type Bi(0.48)Sb(1.52)Te(3)
title_sort effect of substitutional pb doping on bipolar and lattice thermal conductivity in p-type bi(0.48)sb(1.52)te(3)
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5551806/
https://www.ncbi.nlm.nih.gov/pubmed/28773118
http://dx.doi.org/10.3390/ma10070763
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