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Anisotropic crystal orientations dependent mechanical properties and fracture mechanisms in zinc blende ZnTe nanowires

The orientations of crystal growth significantly affect the operating characteristics of elastic and inelastic deformation in semiconductor nanowires (NWs). This work uses molecular dynamics simulation to extensively investigate the orientation-dependent mechanical properties and fracture mechanisms...

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Autores principales: Islam, A. S. M. Jannatul, Islam, Md. Sherajul, Hasan, Md. Sayed, Hosen, Kamal, Akbar, Md. Shahadat, Bhuiyan, Ashraful G., Park, Jeongwon
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10372723/
https://www.ncbi.nlm.nih.gov/pubmed/37520093
http://dx.doi.org/10.1039/d3ra03825d
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author Islam, A. S. M. Jannatul
Islam, Md. Sherajul
Hasan, Md. Sayed
Hosen, Kamal
Akbar, Md. Shahadat
Bhuiyan, Ashraful G.
Park, Jeongwon
author_facet Islam, A. S. M. Jannatul
Islam, Md. Sherajul
Hasan, Md. Sayed
Hosen, Kamal
Akbar, Md. Shahadat
Bhuiyan, Ashraful G.
Park, Jeongwon
author_sort Islam, A. S. M. Jannatul
collection PubMed
description The orientations of crystal growth significantly affect the operating characteristics of elastic and inelastic deformation in semiconductor nanowires (NWs). This work uses molecular dynamics simulation to extensively investigate the orientation-dependent mechanical properties and fracture mechanisms of zinc blende ZnTe NWs. Three different crystal orientations, including [100], [110], and [111], coupled with temperatures (100 to 600 K) on the fracture stress and elastic modulus, are thoroughly studied. In comparison to the [110] and [100] orientations, the [111]-oriented ZnTe NW exhibits a high fracture stress. The percentage decrease in fracture strength exhibits a pronounced variation with increasing temperature, with the highest magnitude observed in the [100] direction and the lowest magnitude observed in the [110] direction. The elastic modulus dropped by the largest percentage in the [111] direction as compared to the [100] direction. Most notably, the [110]-directed ZnTe NW deforms unusually as the strain rate increases, making it more sensitive to strain rate than other orientations. The strong strain rate sensitivity results from the unusual short-range and long-range order crystals appearing due to dislocation slipping and partial twinning. Moreover, the {111} plane is the principal cleavage plane for all orientations, creating a dislocation slipping mechanism at room temperature. The {100} plane becomes active and acts as another fundamental cleavage plane at increasing temperatures. This in-depth analysis paves the way for advancing efficient and reliable ZnTe NWs-based nanodevices and nanomechanical systems.
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spelling pubmed-103727232023-07-28 Anisotropic crystal orientations dependent mechanical properties and fracture mechanisms in zinc blende ZnTe nanowires Islam, A. S. M. Jannatul Islam, Md. Sherajul Hasan, Md. Sayed Hosen, Kamal Akbar, Md. Shahadat Bhuiyan, Ashraful G. Park, Jeongwon RSC Adv Chemistry The orientations of crystal growth significantly affect the operating characteristics of elastic and inelastic deformation in semiconductor nanowires (NWs). This work uses molecular dynamics simulation to extensively investigate the orientation-dependent mechanical properties and fracture mechanisms of zinc blende ZnTe NWs. Three different crystal orientations, including [100], [110], and [111], coupled with temperatures (100 to 600 K) on the fracture stress and elastic modulus, are thoroughly studied. In comparison to the [110] and [100] orientations, the [111]-oriented ZnTe NW exhibits a high fracture stress. The percentage decrease in fracture strength exhibits a pronounced variation with increasing temperature, with the highest magnitude observed in the [100] direction and the lowest magnitude observed in the [110] direction. The elastic modulus dropped by the largest percentage in the [111] direction as compared to the [100] direction. Most notably, the [110]-directed ZnTe NW deforms unusually as the strain rate increases, making it more sensitive to strain rate than other orientations. The strong strain rate sensitivity results from the unusual short-range and long-range order crystals appearing due to dislocation slipping and partial twinning. Moreover, the {111} plane is the principal cleavage plane for all orientations, creating a dislocation slipping mechanism at room temperature. The {100} plane becomes active and acts as another fundamental cleavage plane at increasing temperatures. This in-depth analysis paves the way for advancing efficient and reliable ZnTe NWs-based nanodevices and nanomechanical systems. The Royal Society of Chemistry 2023-07-27 /pmc/articles/PMC10372723/ /pubmed/37520093 http://dx.doi.org/10.1039/d3ra03825d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Islam, A. S. M. Jannatul
Islam, Md. Sherajul
Hasan, Md. Sayed
Hosen, Kamal
Akbar, Md. Shahadat
Bhuiyan, Ashraful G.
Park, Jeongwon
Anisotropic crystal orientations dependent mechanical properties and fracture mechanisms in zinc blende ZnTe nanowires
title Anisotropic crystal orientations dependent mechanical properties and fracture mechanisms in zinc blende ZnTe nanowires
title_full Anisotropic crystal orientations dependent mechanical properties and fracture mechanisms in zinc blende ZnTe nanowires
title_fullStr Anisotropic crystal orientations dependent mechanical properties and fracture mechanisms in zinc blende ZnTe nanowires
title_full_unstemmed Anisotropic crystal orientations dependent mechanical properties and fracture mechanisms in zinc blende ZnTe nanowires
title_short Anisotropic crystal orientations dependent mechanical properties and fracture mechanisms in zinc blende ZnTe nanowires
title_sort anisotropic crystal orientations dependent mechanical properties and fracture mechanisms in zinc blende znte nanowires
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10372723/
https://www.ncbi.nlm.nih.gov/pubmed/37520093
http://dx.doi.org/10.1039/d3ra03825d
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