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Hamawandi, B., Batili, H., Paul, M., Ballikaya, S., Kilic, N. I., Szukiewicz, R., . . . Toprak, M. S. (2021). Minute-Made, High-Efficiency Nanostructured Bi2Te3 via High-Throughput Green Solution Chemical Synthesis. Nanomaterials, 11(8), Article ID 2053.
Open this publication in new window or tab >>Minute-Made, High-Efficiency Nanostructured Bi2Te3 via High-Throughput Green Solution Chemical Synthesis
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2021 (English)In: Nanomaterials, E-ISSN 2079-4991, Vol. 11, no 8, article id 2053Article in journal (Refereed) Published
Abstract [en]

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.

Keywords
nanochemistry, bismuth telluride, thermoelectric, nanoparticles, colloidal synthesis, green chemistry, thermoelectric figure-of-merit, ZT, nanocharacterization, thermal conductivity
National Category
Chemical Sciences
Identifiers
urn:nbn:se:su:diva-197493 (URN)10.3390/nano11082053 (DOI)000689999000001 ()34443884 (PubMedID)
Available from: 2021-10-05 Created: 2021-10-05 Last updated: 2022-02-25Bibliographically approved
Saleemi, M., Toprak, M. S., Li, S., Johnsson, M. & Muhammed, M. (2012). Synthesis, processing, and thermoelectric properties of bulk nanostructured bismuth telluride (Bi2Te3). Journal of Materials Chemistry, 22(2), 725-730
Open this publication in new window or tab >>Synthesis, processing, and thermoelectric properties of bulk nanostructured bismuth telluride (Bi2Te3)
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2012 (English)In: Journal of Materials Chemistry, ISSN 0959-9428, E-ISSN 1364-5501, Vol. 22, no 2, p. 725-730Article in journal (Refereed) Published
Abstract [en]

Bismuth telluride (Bi2Te3) is the best-known commercially used thermoelectric material in the bulk form for cooling and power generation applications at ambient temperature. However, its dimensionless figure-of-merit-ZT around 1 limits the large-scale industrial applications. Recent studies indicate that nanostructuring can enhance ZT while keeping the material form of bulk by employing an advanced synthetic process accompanied with novel consolidation techniques. Here, we report on bulk nanostructured (NS) undoped Bi2Te3 prepared via a promising chemical synthetic route. Spark plasma sintering has been employed for compaction and sintering of Bi2Te3 nanopowders, resulting in very high densification (>97%) while preserving the nanostructure. The average grain size of the final compacts was obtained as 90 +/- 5 nm as calculated from electron micrographs. Evaluation of transport properties showed enhanced Seebeck coefficient (-120 mu V K-1) and electrical conductivity compared to the literature state-of-the-art (30% enhanced power factor), especially in the low temperature range. An improved ZT for NS bulk undoped Bi2Te3 is achieved with a peak value of similar to 1.1 at 340 K.

National Category
Chemical Sciences Materials Engineering
Identifiers
urn:nbn:se:su:diva-162433 (URN)10.1039/c1jm13880d (DOI)000299020000062 ()
Available from: 2018-12-03 Created: 2018-12-03 Last updated: 2022-02-26Bibliographically approved
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ORCID iD: ORCID iD iconorcid.org/0000-0001-5678-5298

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