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Oscillations of Truncation in Vapor−Liquid−Solid Nanowires. / Дубровский, Владимир Германович; Glas, Frank.

в: Crystal Growth and Design, Том 24, № 22, 11.11.2024, стр. 9660-9672.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

Harvard

Дубровский, ВГ & Glas, F 2024, 'Oscillations of Truncation in Vapor−Liquid−Solid Nanowires', Crystal Growth and Design, Том. 24, № 22, стр. 9660-9672. https://doi.org/10.1021/acs.cgd.4c01162

APA

Vancouver

Author

Дубровский, Владимир Германович ; Glas, Frank. / Oscillations of Truncation in Vapor−Liquid−Solid Nanowires. в: Crystal Growth and Design. 2024 ; Том 24, № 22. стр. 9660-9672.

BibTeX

@article{f9a7a26ac4664579ad7fa9fd2df83c26,
title = "Oscillations of Truncation in Vapor−Liquid−Solid Nanowires",
abstract = "The truncated geometry of the liquid-solid interface in Si, Ge, and zincblende III-V nanowires grown by the vapor-liquid-solid method has far-reaching implications in the nanowire morphology, crystal phase, and doping process. It has previously been found that the amount of truncation oscillates in synchronization with the monolayer growth cycle, which was explained within a model of Tersoff and coauthors. Here, we develop an advanced model for the oscillations of the truncated geometry in vapor-liquid-solid nanowires and study in detail different stages of monolayer growth in nanowires with such a geometry. It is shown that the large truncated volumes (on the order of one monolayer) observed experimentally in different nanowires are due to the stopping effect upon reaching zero supersaturation in a catalyst droplet. This effect is specific for small droplets, which do not contain enough material at nucleation to grow a whole monolayer from liquid. Upon reaching zero supersaturation of the liquid phase, the monolayer growth rapidly continues by taking the required amount of material from the truncation, which explains the rapid increase in the truncated volume after the stopping size. In growth conditions without a stopping size, the calculated truncation volumes are much smaller and may be even unphysically small for GaAs and other III-V nanowires. The model is applied to self-catalyzed zincblende GaAs nanowires and Au-catalyzed Si nanowires and compared to the available experimental data.",
author = "Дубровский, {Владимир Германович} and Frank Glas",
year = "2024",
month = nov,
day = "11",
doi = "10.1021/acs.cgd.4c01162",
language = "English",
volume = "24",
pages = "9660--9672",
journal = "Crystal Growth and Design",
issn = "1528-7483",
publisher = "American Chemical Society",
number = "22",

}

RIS

TY - JOUR

T1 - Oscillations of Truncation in Vapor−Liquid−Solid Nanowires

AU - Дубровский, Владимир Германович

AU - Glas, Frank

PY - 2024/11/11

Y1 - 2024/11/11

N2 - The truncated geometry of the liquid-solid interface in Si, Ge, and zincblende III-V nanowires grown by the vapor-liquid-solid method has far-reaching implications in the nanowire morphology, crystal phase, and doping process. It has previously been found that the amount of truncation oscillates in synchronization with the monolayer growth cycle, which was explained within a model of Tersoff and coauthors. Here, we develop an advanced model for the oscillations of the truncated geometry in vapor-liquid-solid nanowires and study in detail different stages of monolayer growth in nanowires with such a geometry. It is shown that the large truncated volumes (on the order of one monolayer) observed experimentally in different nanowires are due to the stopping effect upon reaching zero supersaturation in a catalyst droplet. This effect is specific for small droplets, which do not contain enough material at nucleation to grow a whole monolayer from liquid. Upon reaching zero supersaturation of the liquid phase, the monolayer growth rapidly continues by taking the required amount of material from the truncation, which explains the rapid increase in the truncated volume after the stopping size. In growth conditions without a stopping size, the calculated truncation volumes are much smaller and may be even unphysically small for GaAs and other III-V nanowires. The model is applied to self-catalyzed zincblende GaAs nanowires and Au-catalyzed Si nanowires and compared to the available experimental data.

AB - The truncated geometry of the liquid-solid interface in Si, Ge, and zincblende III-V nanowires grown by the vapor-liquid-solid method has far-reaching implications in the nanowire morphology, crystal phase, and doping process. It has previously been found that the amount of truncation oscillates in synchronization with the monolayer growth cycle, which was explained within a model of Tersoff and coauthors. Here, we develop an advanced model for the oscillations of the truncated geometry in vapor-liquid-solid nanowires and study in detail different stages of monolayer growth in nanowires with such a geometry. It is shown that the large truncated volumes (on the order of one monolayer) observed experimentally in different nanowires are due to the stopping effect upon reaching zero supersaturation in a catalyst droplet. This effect is specific for small droplets, which do not contain enough material at nucleation to grow a whole monolayer from liquid. Upon reaching zero supersaturation of the liquid phase, the monolayer growth rapidly continues by taking the required amount of material from the truncation, which explains the rapid increase in the truncated volume after the stopping size. In growth conditions without a stopping size, the calculated truncation volumes are much smaller and may be even unphysically small for GaAs and other III-V nanowires. The model is applied to self-catalyzed zincblende GaAs nanowires and Au-catalyzed Si nanowires and compared to the available experimental data.

UR - https://www.mendeley.com/catalogue/d60ffd16-8a2c-3a70-b624-c1fd62765570/

U2 - 10.1021/acs.cgd.4c01162

DO - 10.1021/acs.cgd.4c01162

M3 - Article

VL - 24

SP - 9660

EP - 9672

JO - Crystal Growth and Design

JF - Crystal Growth and Design

SN - 1528-7483

IS - 22

ER -

ID: 127401835