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Main Authors: Hamawandi, Bejan, Parsa, Parva, Pudza, Inga, Pudzs, Kaspars, Kuzmin, Alexei, Ballikaya, Sedat, Welter, Edmund, Szukiewicz, Rafal, Kuchowicz, Maciej, Toprak, Muhammet S.
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2503.09856
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author Hamawandi, Bejan
Parsa, Parva
Pudza, Inga
Pudzs, Kaspars
Kuzmin, Alexei
Ballikaya, Sedat
Welter, Edmund
Szukiewicz, Rafal
Kuchowicz, Maciej
Toprak, Muhammet S.
author_facet Hamawandi, Bejan
Parsa, Parva
Pudza, Inga
Pudzs, Kaspars
Kuzmin, Alexei
Ballikaya, Sedat
Welter, Edmund
Szukiewicz, Rafal
Kuchowicz, Maciej
Toprak, Muhammet S.
contents Thermoelectric (TE) materials can directly convert heat into electrical energy. However, they sustain costly production procedures and batch-to-batch performance variations. Therefore, developing scalable synthetic techniques for large-scale and reproducible quality TE materials is critical for advancing TE technology. This study developed a facile, high throughput, solution-chemical synthetic technique. Microwave-assisted thermolysis process, providing energy-efficient volumetric heating, was used for the synthesis of bismuth and antimony telluride (Bi2Te3, Sb2Te3). As-made materials were characterized using various techniques, including XRPD, SEM, TEM, XAS, and XPS. Detailed investigation of the local atomic structure of the synthesized Bi2Te3 and Sb2Te3 powder samples was conducted through synchrotron radiation XAS experiments. The sintered TE materials exhibited low thermal conductivity, achieving the highest TE figure-of-merit values of 0.7 (573 K) and 0.9 (523 K) for n-type Bi2Te3 and p-type Sb2Te3, respectively, shifted significantly to the high-temperature region when compared to earlier reports, highlighting their potential for power generation applications. The scalable, energyand time-efficient synthetic method developed, along with the demonstration of its potential for TE materials, opens the door for a wider application of these materials with minimal environmental impact.
format Preprint
id arxiv_https___arxiv_org_abs_2503_09856
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Scalable solution chemical synthesis and comprehensive analysis of Bi2Te3 and Sb2Te3
Hamawandi, Bejan
Parsa, Parva
Pudza, Inga
Pudzs, Kaspars
Kuzmin, Alexei
Ballikaya, Sedat
Welter, Edmund
Szukiewicz, Rafal
Kuchowicz, Maciej
Toprak, Muhammet S.
Applied Physics
Materials Science
Thermoelectric (TE) materials can directly convert heat into electrical energy. However, they sustain costly production procedures and batch-to-batch performance variations. Therefore, developing scalable synthetic techniques for large-scale and reproducible quality TE materials is critical for advancing TE technology. This study developed a facile, high throughput, solution-chemical synthetic technique. Microwave-assisted thermolysis process, providing energy-efficient volumetric heating, was used for the synthesis of bismuth and antimony telluride (Bi2Te3, Sb2Te3). As-made materials were characterized using various techniques, including XRPD, SEM, TEM, XAS, and XPS. Detailed investigation of the local atomic structure of the synthesized Bi2Te3 and Sb2Te3 powder samples was conducted through synchrotron radiation XAS experiments. The sintered TE materials exhibited low thermal conductivity, achieving the highest TE figure-of-merit values of 0.7 (573 K) and 0.9 (523 K) for n-type Bi2Te3 and p-type Sb2Te3, respectively, shifted significantly to the high-temperature region when compared to earlier reports, highlighting their potential for power generation applications. The scalable, energyand time-efficient synthetic method developed, along with the demonstration of its potential for TE materials, opens the door for a wider application of these materials with minimal environmental impact.
title Scalable solution chemical synthesis and comprehensive analysis of Bi2Te3 and Sb2Te3
topic Applied Physics
Materials Science
url https://arxiv.org/abs/2503.09856