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Room-Temperature Thermoelectric Performance of n-Type Multiphase Pseudobinary Bi(2)Te(3)–Bi(2)S(3) Compounds: Synergic Effects of Phonon Scattering and Energy Filtering

[Image: see text] Bismuth telluride-based alloys possess the highest efficiencies for the low-temperature-range (<500 K) applications among thermoelectric materials. Despite significant advances in the efficiency of p-type Bi(2)Te(3)-based materials through engineering the electronic band structu...

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Autores principales: Aminorroaya Yamini, Sima, Santos, Rafael, Fortulan, Raphael, Gazder, Azdiar A., Malhotra, Abhishek, Vashaee, Daryoosh, Serhiienko, Illia, Mori, Takao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10119860/
https://www.ncbi.nlm.nih.gov/pubmed/37014987
http://dx.doi.org/10.1021/acsami.3c01956
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author Aminorroaya Yamini, Sima
Santos, Rafael
Fortulan, Raphael
Gazder, Azdiar A.
Malhotra, Abhishek
Vashaee, Daryoosh
Serhiienko, Illia
Mori, Takao
author_facet Aminorroaya Yamini, Sima
Santos, Rafael
Fortulan, Raphael
Gazder, Azdiar A.
Malhotra, Abhishek
Vashaee, Daryoosh
Serhiienko, Illia
Mori, Takao
author_sort Aminorroaya Yamini, Sima
collection PubMed
description [Image: see text] Bismuth telluride-based alloys possess the highest efficiencies for the low-temperature-range (<500 K) applications among thermoelectric materials. Despite significant advances in the efficiency of p-type Bi(2)Te(3)-based materials through engineering the electronic band structure by convergence of multiple bands, the n-type pair still suffers from poor efficiency due to a lower number of electron pockets near the conduction band edge than the valence band. To overcome the persistent low efficiency of n-type Bi(2)Te(3)-based materials, we have fabricated multiphase pseudobinary Bi(2)Te(3)–Bi(2)S(3) compounds to take advantages of phonon scattering and energy filtering at interfaces, enhancing the efficiency of these materials. The energy barrier generated at the interface of the secondary phase of Bi(14)Te(13)S(8) in the Bi(2)Te(3) matrix resulted in a higher Seebeck coefficient and consequently a higher power factor in multiphase compounds than the single-phase alloys. This effect was combined with low thermal conductivity achieved through phonon scattering at the interfaces of finely structured multiphase compounds and resulted in a relatively high thermoelectric figure of merit of ∼0.7 over the 300–550 K temperature range for the multiphase sample of n-type Bi(2)Te(2.75)S(0.25), double the efficiency of single-phase Bi(2)Te(3). Our results inform an alternative alloy design to enhance the performance of thermoelectric materials.
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spelling pubmed-101198602023-04-22 Room-Temperature Thermoelectric Performance of n-Type Multiphase Pseudobinary Bi(2)Te(3)–Bi(2)S(3) Compounds: Synergic Effects of Phonon Scattering and Energy Filtering Aminorroaya Yamini, Sima Santos, Rafael Fortulan, Raphael Gazder, Azdiar A. Malhotra, Abhishek Vashaee, Daryoosh Serhiienko, Illia Mori, Takao ACS Appl Mater Interfaces [Image: see text] Bismuth telluride-based alloys possess the highest efficiencies for the low-temperature-range (<500 K) applications among thermoelectric materials. Despite significant advances in the efficiency of p-type Bi(2)Te(3)-based materials through engineering the electronic band structure by convergence of multiple bands, the n-type pair still suffers from poor efficiency due to a lower number of electron pockets near the conduction band edge than the valence band. To overcome the persistent low efficiency of n-type Bi(2)Te(3)-based materials, we have fabricated multiphase pseudobinary Bi(2)Te(3)–Bi(2)S(3) compounds to take advantages of phonon scattering and energy filtering at interfaces, enhancing the efficiency of these materials. The energy barrier generated at the interface of the secondary phase of Bi(14)Te(13)S(8) in the Bi(2)Te(3) matrix resulted in a higher Seebeck coefficient and consequently a higher power factor in multiphase compounds than the single-phase alloys. This effect was combined with low thermal conductivity achieved through phonon scattering at the interfaces of finely structured multiphase compounds and resulted in a relatively high thermoelectric figure of merit of ∼0.7 over the 300–550 K temperature range for the multiphase sample of n-type Bi(2)Te(2.75)S(0.25), double the efficiency of single-phase Bi(2)Te(3). Our results inform an alternative alloy design to enhance the performance of thermoelectric materials. American Chemical Society 2023-04-04 /pmc/articles/PMC10119860/ /pubmed/37014987 http://dx.doi.org/10.1021/acsami.3c01956 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Aminorroaya Yamini, Sima
Santos, Rafael
Fortulan, Raphael
Gazder, Azdiar A.
Malhotra, Abhishek
Vashaee, Daryoosh
Serhiienko, Illia
Mori, Takao
Room-Temperature Thermoelectric Performance of n-Type Multiphase Pseudobinary Bi(2)Te(3)–Bi(2)S(3) Compounds: Synergic Effects of Phonon Scattering and Energy Filtering
title Room-Temperature Thermoelectric Performance of n-Type Multiphase Pseudobinary Bi(2)Te(3)–Bi(2)S(3) Compounds: Synergic Effects of Phonon Scattering and Energy Filtering
title_full Room-Temperature Thermoelectric Performance of n-Type Multiphase Pseudobinary Bi(2)Te(3)–Bi(2)S(3) Compounds: Synergic Effects of Phonon Scattering and Energy Filtering
title_fullStr Room-Temperature Thermoelectric Performance of n-Type Multiphase Pseudobinary Bi(2)Te(3)–Bi(2)S(3) Compounds: Synergic Effects of Phonon Scattering and Energy Filtering
title_full_unstemmed Room-Temperature Thermoelectric Performance of n-Type Multiphase Pseudobinary Bi(2)Te(3)–Bi(2)S(3) Compounds: Synergic Effects of Phonon Scattering and Energy Filtering
title_short Room-Temperature Thermoelectric Performance of n-Type Multiphase Pseudobinary Bi(2)Te(3)–Bi(2)S(3) Compounds: Synergic Effects of Phonon Scattering and Energy Filtering
title_sort room-temperature thermoelectric performance of n-type multiphase pseudobinary bi(2)te(3)–bi(2)s(3) compounds: synergic effects of phonon scattering and energy filtering
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10119860/
https://www.ncbi.nlm.nih.gov/pubmed/37014987
http://dx.doi.org/10.1021/acsami.3c01956
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