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Precursor-Led Grain Boundary Engineering for Superior Thermoelectric Performance in Niobium Strontium Titanate

[Image: see text] We present a novel method to significantly enhance the thermoelectric performance of ceramics in the model system SrTi(0.85)Nb(0.15)O(3) through the use of the precursor ammonium tetrathiomolybdate (0.5–2% w/w additions). After sintering the precursor-infused green body at 1700 K f...

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Autores principales: Zhu, Yibing, Azough, Feridoon, Liu, Xiaodong, Zhong, Xiangli, Zhao, Minghao, Margaronis, Kalliope, Kar-Narayan, Sohini, Kinloch, Ian, Lewis, David J., Freer, Robert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10020962/
https://www.ncbi.nlm.nih.gov/pubmed/36854123
http://dx.doi.org/10.1021/acsami.2c22712
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author Zhu, Yibing
Azough, Feridoon
Liu, Xiaodong
Zhong, Xiangli
Zhao, Minghao
Margaronis, Kalliope
Kar-Narayan, Sohini
Kinloch, Ian
Lewis, David J.
Freer, Robert
author_facet Zhu, Yibing
Azough, Feridoon
Liu, Xiaodong
Zhong, Xiangli
Zhao, Minghao
Margaronis, Kalliope
Kar-Narayan, Sohini
Kinloch, Ian
Lewis, David J.
Freer, Robert
author_sort Zhu, Yibing
collection PubMed
description [Image: see text] We present a novel method to significantly enhance the thermoelectric performance of ceramics in the model system SrTi(0.85)Nb(0.15)O(3) through the use of the precursor ammonium tetrathiomolybdate (0.5–2% w/w additions). After sintering the precursor-infused green body at 1700 K for 24 h in 5% H(2)/Ar, single-crystal-like electron transport behavior developed with electrical conductivity reaching ∼3000 S/cm at ∼300 K, almost a magnitude higher than that in the control sample. During processing, the precursor transformed into MoS(2), then into MoO(x), and finally into Mo particles. This limited grain growth promoted secondary phase generation but importantly helped to reduce the grain boundary barriers. Samples prepared with additions of the precursor exhibited vastly increased electrical conductivity, without significant impact on Seebeck coefficients giving rise to high power factor values of 1760 μW/mK(2) at ∼300 K and a maximum thermoelectric figure-of-merit zT of 0.24 at 823 K. This processing strategy provides a simple method to achieve high charge mobility in polycrystalline titanate and related materials and with the potential to create “phonon-glass-electron-crystal” oxide thermoelectric materials.
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spelling pubmed-100209622023-03-18 Precursor-Led Grain Boundary Engineering for Superior Thermoelectric Performance in Niobium Strontium Titanate Zhu, Yibing Azough, Feridoon Liu, Xiaodong Zhong, Xiangli Zhao, Minghao Margaronis, Kalliope Kar-Narayan, Sohini Kinloch, Ian Lewis, David J. Freer, Robert ACS Appl Mater Interfaces [Image: see text] We present a novel method to significantly enhance the thermoelectric performance of ceramics in the model system SrTi(0.85)Nb(0.15)O(3) through the use of the precursor ammonium tetrathiomolybdate (0.5–2% w/w additions). After sintering the precursor-infused green body at 1700 K for 24 h in 5% H(2)/Ar, single-crystal-like electron transport behavior developed with electrical conductivity reaching ∼3000 S/cm at ∼300 K, almost a magnitude higher than that in the control sample. During processing, the precursor transformed into MoS(2), then into MoO(x), and finally into Mo particles. This limited grain growth promoted secondary phase generation but importantly helped to reduce the grain boundary barriers. Samples prepared with additions of the precursor exhibited vastly increased electrical conductivity, without significant impact on Seebeck coefficients giving rise to high power factor values of 1760 μW/mK(2) at ∼300 K and a maximum thermoelectric figure-of-merit zT of 0.24 at 823 K. This processing strategy provides a simple method to achieve high charge mobility in polycrystalline titanate and related materials and with the potential to create “phonon-glass-electron-crystal” oxide thermoelectric materials. American Chemical Society 2023-02-28 /pmc/articles/PMC10020962/ /pubmed/36854123 http://dx.doi.org/10.1021/acsami.2c22712 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 Zhu, Yibing
Azough, Feridoon
Liu, Xiaodong
Zhong, Xiangli
Zhao, Minghao
Margaronis, Kalliope
Kar-Narayan, Sohini
Kinloch, Ian
Lewis, David J.
Freer, Robert
Precursor-Led Grain Boundary Engineering for Superior Thermoelectric Performance in Niobium Strontium Titanate
title Precursor-Led Grain Boundary Engineering for Superior Thermoelectric Performance in Niobium Strontium Titanate
title_full Precursor-Led Grain Boundary Engineering for Superior Thermoelectric Performance in Niobium Strontium Titanate
title_fullStr Precursor-Led Grain Boundary Engineering for Superior Thermoelectric Performance in Niobium Strontium Titanate
title_full_unstemmed Precursor-Led Grain Boundary Engineering for Superior Thermoelectric Performance in Niobium Strontium Titanate
title_short Precursor-Led Grain Boundary Engineering for Superior Thermoelectric Performance in Niobium Strontium Titanate
title_sort precursor-led grain boundary engineering for superior thermoelectric performance in niobium strontium titanate
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10020962/
https://www.ncbi.nlm.nih.gov/pubmed/36854123
http://dx.doi.org/10.1021/acsami.2c22712
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