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Real-time thermal decomposition kinetics of GaAs nanowires and their crystal polytypes on the atomic scale

Nanowires (NWs) offer unique opportunities for tuning the properties of III–V semiconductors by simultaneously controlling their nanoscale dimensions and switching their crystal phase between zinc-blende (ZB) and wurtzite (WZ). While much of this control has been enabled by direct, forward growth, t...

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Autores principales: Schmiedeke, Paul, Panciera, Federico, Harmand, Jean-Christophe, Travers, Laurent, Koblmüller, Gregor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10228496/
https://www.ncbi.nlm.nih.gov/pubmed/37260482
http://dx.doi.org/10.1039/d3na00135k
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author Schmiedeke, Paul
Panciera, Federico
Harmand, Jean-Christophe
Travers, Laurent
Koblmüller, Gregor
author_facet Schmiedeke, Paul
Panciera, Federico
Harmand, Jean-Christophe
Travers, Laurent
Koblmüller, Gregor
author_sort Schmiedeke, Paul
collection PubMed
description Nanowires (NWs) offer unique opportunities for tuning the properties of III–V semiconductors by simultaneously controlling their nanoscale dimensions and switching their crystal phase between zinc-blende (ZB) and wurtzite (WZ). While much of this control has been enabled by direct, forward growth, the reverse reaction, i.e., crystal decomposition, provides very powerful means to further tailor properties towards the ultra-scaled dimensional level. Here, we use in situ transmission electron microscopy (TEM) to investigate the thermal decomposition kinetics of clean, ultrathin GaAs NWs and the role of distinctly different crystal polytypes in real-time and on the atomic scale. The whole process, from the NW growth to the decomposition, is conducted in situ without breaking vacuum to maintain pristine crystal surfaces. Radial decomposition occurs much faster for ZB- compared to WZ-phase NWs, due to the development of nano-faceted sidewall morphology and sublimation along the entire NW length. In contrast, WZ NWs form single-faceted, vertical sidewalls with decomposition proceeding only via step-flow mechanism from the NW tip. Concurrent axial decomposition is generally faster than the radial process, but is significantly faster (∼4-fold) in WZ phase, due to the absence of well-defined facets at the tip of WZ NWs. The results further show quantitatively the influence of the NW diameter on the sublimation and step-flow decomposition velocities elucidating several effects that can be exploited to fine-tune the NW dimensions.
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spelling pubmed-102284962023-05-31 Real-time thermal decomposition kinetics of GaAs nanowires and their crystal polytypes on the atomic scale Schmiedeke, Paul Panciera, Federico Harmand, Jean-Christophe Travers, Laurent Koblmüller, Gregor Nanoscale Adv Chemistry Nanowires (NWs) offer unique opportunities for tuning the properties of III–V semiconductors by simultaneously controlling their nanoscale dimensions and switching their crystal phase between zinc-blende (ZB) and wurtzite (WZ). While much of this control has been enabled by direct, forward growth, the reverse reaction, i.e., crystal decomposition, provides very powerful means to further tailor properties towards the ultra-scaled dimensional level. Here, we use in situ transmission electron microscopy (TEM) to investigate the thermal decomposition kinetics of clean, ultrathin GaAs NWs and the role of distinctly different crystal polytypes in real-time and on the atomic scale. The whole process, from the NW growth to the decomposition, is conducted in situ without breaking vacuum to maintain pristine crystal surfaces. Radial decomposition occurs much faster for ZB- compared to WZ-phase NWs, due to the development of nano-faceted sidewall morphology and sublimation along the entire NW length. In contrast, WZ NWs form single-faceted, vertical sidewalls with decomposition proceeding only via step-flow mechanism from the NW tip. Concurrent axial decomposition is generally faster than the radial process, but is significantly faster (∼4-fold) in WZ phase, due to the absence of well-defined facets at the tip of WZ NWs. The results further show quantitatively the influence of the NW diameter on the sublimation and step-flow decomposition velocities elucidating several effects that can be exploited to fine-tune the NW dimensions. RSC 2023-05-05 /pmc/articles/PMC10228496/ /pubmed/37260482 http://dx.doi.org/10.1039/d3na00135k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Schmiedeke, Paul
Panciera, Federico
Harmand, Jean-Christophe
Travers, Laurent
Koblmüller, Gregor
Real-time thermal decomposition kinetics of GaAs nanowires and their crystal polytypes on the atomic scale
title Real-time thermal decomposition kinetics of GaAs nanowires and their crystal polytypes on the atomic scale
title_full Real-time thermal decomposition kinetics of GaAs nanowires and their crystal polytypes on the atomic scale
title_fullStr Real-time thermal decomposition kinetics of GaAs nanowires and their crystal polytypes on the atomic scale
title_full_unstemmed Real-time thermal decomposition kinetics of GaAs nanowires and their crystal polytypes on the atomic scale
title_short Real-time thermal decomposition kinetics of GaAs nanowires and their crystal polytypes on the atomic scale
title_sort real-time thermal decomposition kinetics of gaas nanowires and their crystal polytypes on the atomic scale
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10228496/
https://www.ncbi.nlm.nih.gov/pubmed/37260482
http://dx.doi.org/10.1039/d3na00135k
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