Effect of Side Surface Orientation on the Mechanical Properties of Silicon Nanowires: A Molecular Dynamics Study

We investigated the mechanical properties of <100>-oriented square cross-sectional silicon nanowires under tension and compression, with a focus on the effect of side surface orientation. Two types of silicon nanowires (i.e., nanowires with four {100} side surfaces and those with four...

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Main Authors: Xiao Ru Zhuo, Hyeon Gyu Beom
Format: Article
Language:English
Published: MDPI AG 2019-02-01
Series:Crystals
Subjects:
Online Access:https://www.mdpi.com/2073-4352/9/2/102
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spelling doaj-7fca07c0f5de479e8ed93deb9b0223dd2020-11-24T20:45:17ZengMDPI AGCrystals2073-43522019-02-019210210.3390/cryst9020102cryst9020102Effect of Side Surface Orientation on the Mechanical Properties of Silicon Nanowires: A Molecular Dynamics StudyXiao Ru Zhuo0Hyeon Gyu Beom1College of Mechanics and Materials, Hohai University, Nanjing 210098, ChinaDepartment of Mechanical Engineering, Inha University, Incheon 402-751, KoreaWe investigated the mechanical properties of <100>-oriented square cross-sectional silicon nanowires under tension and compression, with a focus on the effect of side surface orientation. Two types of silicon nanowires (i.e., nanowires with four {100} side surfaces and those with four {110} side surfaces) were simulated by molecular dynamics simulations at a temperature of 300 K. The deformation mechanism exhibited no dependence on the side surface orientation, while the tensile strength and compressive strength did. Brittle cleavage was observed under tension, whereas dislocation nucleation was witnessed under compression. Silicon nanowires with {100} side surfaces had a lower tensile strength but higher compressive strength. The effect of side surface orientation became stronger as the nanowire width decreased. The obtained results may provide some insight into the design of silicon-based nano-devices.https://www.mdpi.com/2073-4352/9/2/102molecular dynamics simulationsilicon nanowiresside surface orientation effecttensile strengthcompressive strength
collection DOAJ
language English
format Article
sources DOAJ
author Xiao Ru Zhuo
Hyeon Gyu Beom
spellingShingle Xiao Ru Zhuo
Hyeon Gyu Beom
Effect of Side Surface Orientation on the Mechanical Properties of Silicon Nanowires: A Molecular Dynamics Study
Crystals
molecular dynamics simulation
silicon nanowires
side surface orientation effect
tensile strength
compressive strength
author_facet Xiao Ru Zhuo
Hyeon Gyu Beom
author_sort Xiao Ru Zhuo
title Effect of Side Surface Orientation on the Mechanical Properties of Silicon Nanowires: A Molecular Dynamics Study
title_short Effect of Side Surface Orientation on the Mechanical Properties of Silicon Nanowires: A Molecular Dynamics Study
title_full Effect of Side Surface Orientation on the Mechanical Properties of Silicon Nanowires: A Molecular Dynamics Study
title_fullStr Effect of Side Surface Orientation on the Mechanical Properties of Silicon Nanowires: A Molecular Dynamics Study
title_full_unstemmed Effect of Side Surface Orientation on the Mechanical Properties of Silicon Nanowires: A Molecular Dynamics Study
title_sort effect of side surface orientation on the mechanical properties of silicon nanowires: a molecular dynamics study
publisher MDPI AG
series Crystals
issn 2073-4352
publishDate 2019-02-01
description We investigated the mechanical properties of <100>-oriented square cross-sectional silicon nanowires under tension and compression, with a focus on the effect of side surface orientation. Two types of silicon nanowires (i.e., nanowires with four {100} side surfaces and those with four {110} side surfaces) were simulated by molecular dynamics simulations at a temperature of 300 K. The deformation mechanism exhibited no dependence on the side surface orientation, while the tensile strength and compressive strength did. Brittle cleavage was observed under tension, whereas dislocation nucleation was witnessed under compression. Silicon nanowires with {100} side surfaces had a lower tensile strength but higher compressive strength. The effect of side surface orientation became stronger as the nanowire width decreased. The obtained results may provide some insight into the design of silicon-based nano-devices.
topic molecular dynamics simulation
silicon nanowires
side surface orientation effect
tensile strength
compressive strength
url https://www.mdpi.com/2073-4352/9/2/102
work_keys_str_mv AT xiaoruzhuo effectofsidesurfaceorientationonthemechanicalpropertiesofsiliconnanowiresamoleculardynamicsstudy
AT hyeongyubeom effectofsidesurfaceorientationonthemechanicalpropertiesofsiliconnanowiresamoleculardynamicsstudy
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