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Insights into the Growth of Ternary WSSe Nanotubes in an Atmospheric CVD Reactor

[Image: see text] The synthesis of complex new nanostructures is challenging but also bears the potential for observing new physiochemical properties and offers unique applications in the long run. High-temperature synthesis of ternary WSe(2x)S(2(1–x)) (denoted as WSSe) nanotubes in a pure phase and...

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Autores principales: Rosentsveig, R., Sreedhara, M. B., Sinha, S. S., Kaplan-Ashiri, I., Brontvein, O., Feldman, Y., Pinkas, I., Zheng, K., Castelli, I. E., Tenne, R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10630937/
https://www.ncbi.nlm.nih.gov/pubmed/37874545
http://dx.doi.org/10.1021/acs.inorgchem.3c02903
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author Rosentsveig, R.
Sreedhara, M. B.
Sinha, S. S.
Kaplan-Ashiri, I.
Brontvein, O.
Feldman, Y.
Pinkas, I.
Zheng, K.
Castelli, I. E.
Tenne, R.
author_facet Rosentsveig, R.
Sreedhara, M. B.
Sinha, S. S.
Kaplan-Ashiri, I.
Brontvein, O.
Feldman, Y.
Pinkas, I.
Zheng, K.
Castelli, I. E.
Tenne, R.
author_sort Rosentsveig, R.
collection PubMed
description [Image: see text] The synthesis of complex new nanostructures is challenging but also bears the potential for observing new physiochemical properties and offers unique applications in the long run. High-temperature synthesis of ternary WSe(2x)S(2(1–x)) (denoted as WSSe) nanotubes in a pure phase and in substantial quantities is particularly challenging, requiring a unique reactor design and control over several parameters, simultaneously. Here, the growth of WSSe nanotubes with the composition 0 ≤ x < 1 from W(18)O(49) nanowhiskers in an atmospheric chemical vapor deposition (CVD) flow reactor is investigated. The oxide precursor powder is found to be heavily agglomerated, with long nanowhiskers decorating the outer surface of the agglomerates and their core being enriched with oxide microcrystallites. The reaction kinetics with respect to the chalcogen vapors varies substantially between the two kinds of oxide morphologies. Insights into the chemical reactivity and diffusion kinetics of S and Se within W(18)O(49) nanowhishkers and the micro-oxide crystallites were gained through detailed microscopic, spectroscopic analysis of the reaction products and also through density functional theory (DFT) calculations. For safety reasons, the reaction duration was limited to half an hour each. Under these circumstances, the reaction was completed for some 50% of the nanotubes and the other half remained with thick oxide core producing new WO(x)@WSSe core–shell nanotubes. Furthermore, the selenium reacted rather slowly with the WO(x) nanowhiskers, whereas the more ionic and smaller sulfur atoms were shown to diffuse and react faster. The yield of the combined hollow and core–shell nanotubes on the periphery of the agglomerated oxide was very high, approaching 100% in parts of the reactor boat. The nanotubes were found to be very thin (∼80% with a diameter <40 nm). The optical properties of the nanotubes were studied, and almost linear bandgap modulation was observed with respect to the selenium content in the nanotubes. This investigation paves the way for further scaling up the synthesis and for a detailed study of the different properties of WSSe nanotubes.
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spelling pubmed-106309372023-11-15 Insights into the Growth of Ternary WSSe Nanotubes in an Atmospheric CVD Reactor Rosentsveig, R. Sreedhara, M. B. Sinha, S. S. Kaplan-Ashiri, I. Brontvein, O. Feldman, Y. Pinkas, I. Zheng, K. Castelli, I. E. Tenne, R. Inorg Chem [Image: see text] The synthesis of complex new nanostructures is challenging but also bears the potential for observing new physiochemical properties and offers unique applications in the long run. High-temperature synthesis of ternary WSe(2x)S(2(1–x)) (denoted as WSSe) nanotubes in a pure phase and in substantial quantities is particularly challenging, requiring a unique reactor design and control over several parameters, simultaneously. Here, the growth of WSSe nanotubes with the composition 0 ≤ x < 1 from W(18)O(49) nanowhiskers in an atmospheric chemical vapor deposition (CVD) flow reactor is investigated. The oxide precursor powder is found to be heavily agglomerated, with long nanowhiskers decorating the outer surface of the agglomerates and their core being enriched with oxide microcrystallites. The reaction kinetics with respect to the chalcogen vapors varies substantially between the two kinds of oxide morphologies. Insights into the chemical reactivity and diffusion kinetics of S and Se within W(18)O(49) nanowhishkers and the micro-oxide crystallites were gained through detailed microscopic, spectroscopic analysis of the reaction products and also through density functional theory (DFT) calculations. For safety reasons, the reaction duration was limited to half an hour each. Under these circumstances, the reaction was completed for some 50% of the nanotubes and the other half remained with thick oxide core producing new WO(x)@WSSe core–shell nanotubes. Furthermore, the selenium reacted rather slowly with the WO(x) nanowhiskers, whereas the more ionic and smaller sulfur atoms were shown to diffuse and react faster. The yield of the combined hollow and core–shell nanotubes on the periphery of the agglomerated oxide was very high, approaching 100% in parts of the reactor boat. The nanotubes were found to be very thin (∼80% with a diameter <40 nm). The optical properties of the nanotubes were studied, and almost linear bandgap modulation was observed with respect to the selenium content in the nanotubes. This investigation paves the way for further scaling up the synthesis and for a detailed study of the different properties of WSSe nanotubes. American Chemical Society 2023-10-24 /pmc/articles/PMC10630937/ /pubmed/37874545 http://dx.doi.org/10.1021/acs.inorgchem.3c02903 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 Rosentsveig, R.
Sreedhara, M. B.
Sinha, S. S.
Kaplan-Ashiri, I.
Brontvein, O.
Feldman, Y.
Pinkas, I.
Zheng, K.
Castelli, I. E.
Tenne, R.
Insights into the Growth of Ternary WSSe Nanotubes in an Atmospheric CVD Reactor
title Insights into the Growth of Ternary WSSe Nanotubes in an Atmospheric CVD Reactor
title_full Insights into the Growth of Ternary WSSe Nanotubes in an Atmospheric CVD Reactor
title_fullStr Insights into the Growth of Ternary WSSe Nanotubes in an Atmospheric CVD Reactor
title_full_unstemmed Insights into the Growth of Ternary WSSe Nanotubes in an Atmospheric CVD Reactor
title_short Insights into the Growth of Ternary WSSe Nanotubes in an Atmospheric CVD Reactor
title_sort insights into the growth of ternary wsse nanotubes in an atmospheric cvd reactor
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10630937/
https://www.ncbi.nlm.nih.gov/pubmed/37874545
http://dx.doi.org/10.1021/acs.inorgchem.3c02903
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