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Minute-Made, High-Efficiency Nanostructured Bi(2)Te(3) via High-Throughput Green Solution Chemical Synthesis

Scalable synthetic strategies for high-quality and reproducible thermoelectric (TE) materials is an essential step for advancing the TE technology. We present here very rapid and effective methods for the synthesis of nanostructured bismuth telluride materials with promising TE performance. The meth...

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Autores principales: Hamawandi, Bejan, Batili, Hazal, Paul, Moon, Ballikaya, Sedat, Kilic, Nuzhet I., Szukiewicz, Rafal, Kuchowicz, Maciej, Johnsson, Mats, Toprak, Muhammet S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8400796/
https://www.ncbi.nlm.nih.gov/pubmed/34443884
http://dx.doi.org/10.3390/nano11082053
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author Hamawandi, Bejan
Batili, Hazal
Paul, Moon
Ballikaya, Sedat
Kilic, Nuzhet I.
Szukiewicz, Rafal
Kuchowicz, Maciej
Johnsson, Mats
Toprak, Muhammet S.
author_facet Hamawandi, Bejan
Batili, Hazal
Paul, Moon
Ballikaya, Sedat
Kilic, Nuzhet I.
Szukiewicz, Rafal
Kuchowicz, Maciej
Johnsson, Mats
Toprak, Muhammet S.
author_sort Hamawandi, Bejan
collection PubMed
description Scalable synthetic strategies for high-quality and reproducible thermoelectric (TE) materials is an essential step for advancing the TE technology. We present here very rapid and effective methods for the synthesis of nanostructured bismuth telluride materials with promising TE performance. The methodology is based on an effective volume heating using microwaves, leading to highly crystalline nanostructured powders, in a reaction duration of two minutes. As the solvents, we demonstrate that water with a high dielectric constant is as good a solvent as ethylene glycol (EG) for the synthetic process, providing a greener reaction media. Crystal structure, crystallinity, morphology, microstructure and surface chemistry of these materials were evaluated using XRD, SEM/TEM, XPS and zeta potential characterization techniques. Nanostructured particles with hexagonal platelet morphology were observed in both systems. Surfaces show various degrees of oxidation, and signatures of the precursors used. Thermoelectric transport properties were evaluated using electrical conductivity, Seebeck coefficient and thermal conductivity measurements to estimate the TE figure-of-merit, ZT. Low thermal conductivity values were obtained, mainly due to the increased density of boundaries via materials nanostructuring. The estimated ZT values of 0.8–0.9 was reached in the 300–375 K temperature range for the hydrothermally synthesized sample, while 0.9–1 was reached in the 425–525 K temperature range for the polyol (EG) sample. Considering the energy and time efficiency of the synthetic processes developed in this work, these are rather promising ZT values paving the way for a wider impact of these strategic materials with a minimum environmental impact.
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spelling pubmed-84007962021-08-29 Minute-Made, High-Efficiency Nanostructured Bi(2)Te(3) via High-Throughput Green Solution Chemical Synthesis Hamawandi, Bejan Batili, Hazal Paul, Moon Ballikaya, Sedat Kilic, Nuzhet I. Szukiewicz, Rafal Kuchowicz, Maciej Johnsson, Mats Toprak, Muhammet S. Nanomaterials (Basel) Article Scalable synthetic strategies for high-quality and reproducible thermoelectric (TE) materials is an essential step for advancing the TE technology. We present here very rapid and effective methods for the synthesis of nanostructured bismuth telluride materials with promising TE performance. The methodology is based on an effective volume heating using microwaves, leading to highly crystalline nanostructured powders, in a reaction duration of two minutes. As the solvents, we demonstrate that water with a high dielectric constant is as good a solvent as ethylene glycol (EG) for the synthetic process, providing a greener reaction media. Crystal structure, crystallinity, morphology, microstructure and surface chemistry of these materials were evaluated using XRD, SEM/TEM, XPS and zeta potential characterization techniques. Nanostructured particles with hexagonal platelet morphology were observed in both systems. Surfaces show various degrees of oxidation, and signatures of the precursors used. Thermoelectric transport properties were evaluated using electrical conductivity, Seebeck coefficient and thermal conductivity measurements to estimate the TE figure-of-merit, ZT. Low thermal conductivity values were obtained, mainly due to the increased density of boundaries via materials nanostructuring. The estimated ZT values of 0.8–0.9 was reached in the 300–375 K temperature range for the hydrothermally synthesized sample, while 0.9–1 was reached in the 425–525 K temperature range for the polyol (EG) sample. Considering the energy and time efficiency of the synthetic processes developed in this work, these are rather promising ZT values paving the way for a wider impact of these strategic materials with a minimum environmental impact. MDPI 2021-08-12 /pmc/articles/PMC8400796/ /pubmed/34443884 http://dx.doi.org/10.3390/nano11082053 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
Hamawandi, Bejan
Batili, Hazal
Paul, Moon
Ballikaya, Sedat
Kilic, Nuzhet I.
Szukiewicz, Rafal
Kuchowicz, Maciej
Johnsson, Mats
Toprak, Muhammet S.
Minute-Made, High-Efficiency Nanostructured Bi(2)Te(3) via High-Throughput Green Solution Chemical Synthesis
title Minute-Made, High-Efficiency Nanostructured Bi(2)Te(3) via High-Throughput Green Solution Chemical Synthesis
title_full Minute-Made, High-Efficiency Nanostructured Bi(2)Te(3) via High-Throughput Green Solution Chemical Synthesis
title_fullStr Minute-Made, High-Efficiency Nanostructured Bi(2)Te(3) via High-Throughput Green Solution Chemical Synthesis
title_full_unstemmed Minute-Made, High-Efficiency Nanostructured Bi(2)Te(3) via High-Throughput Green Solution Chemical Synthesis
title_short Minute-Made, High-Efficiency Nanostructured Bi(2)Te(3) via High-Throughput Green Solution Chemical Synthesis
title_sort minute-made, high-efficiency nanostructured bi(2)te(3) via high-throughput green solution chemical synthesis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8400796/
https://www.ncbi.nlm.nih.gov/pubmed/34443884
http://dx.doi.org/10.3390/nano11082053
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