The Size Effects of Point Defect on the Mechanical Properties of Monocrystalline Silicon: A Molecular Dynamics Study

The molecular dynamics method was used to simulate the fracture process of monocrystalline silicon with different sizes of point defect under a constant strain rate. The mechanism of the defect size on the mechanical properties of monocrystalline silicon was also investigated. The results suggested...

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Main Authors: Wei Wan, Changxin Tang, An Qiu, Yongkang Xiang
Format: Article
Language:English
Published: MDPI AG 2021-06-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/14/11/3011
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spelling doaj-49ed99310a6e47deba5f0668740671672021-06-30T23:05:18ZengMDPI AGMaterials1996-19442021-06-01143011301110.3390/ma14113011The Size Effects of Point Defect on the Mechanical Properties of Monocrystalline Silicon: A Molecular Dynamics StudyWei Wan0Changxin Tang1An Qiu2Yongkang Xiang3Institute of Photovoltaics, Nanchang University, Nanchang 330031, ChinaInstitute of Photovoltaics, Nanchang University, Nanchang 330031, ChinaInstitute of Photovoltaics, Nanchang University, Nanchang 330031, ChinaInstitute of Photovoltaics, Nanchang University, Nanchang 330031, ChinaThe molecular dynamics method was used to simulate the fracture process of monocrystalline silicon with different sizes of point defect under a constant strain rate. The mechanism of the defect size on the mechanical properties of monocrystalline silicon was also investigated. The results suggested that the point defect significantly reduces the yield strength of monocrystalline silicon. The relationships between the yield strength variation and the size of point defect fitted an exponential function. By statistically analyzing the internal stress in monocrystalline silicon, it was found that the stress concentration induced by the point defect led to the decrease in the yield strength. A comparison between the theoretical strength given by the four theories of strength and actual strength proved that the Mises theory was the best theory of strength to describe the yield strength of monocrystalline silicon. The dynamic evolution process of Mises stress and dislocation showed that the fracture was caused by the concentration effect of Mises stress and dislocation slip. Finally, the fractured microstructures were similar to a kind of two-dimensional grid which distributed along the cleavage planes while visualizing the specimens. The results of this article provide a reference for evaluating the size effects of point defects on the mechanical properties of monocrystalline silicon.https://www.mdpi.com/1996-1944/14/11/3011monocrystalline siliconmolecular dynamicspoint defectmechanical properties
collection DOAJ
language English
format Article
sources DOAJ
author Wei Wan
Changxin Tang
An Qiu
Yongkang Xiang
spellingShingle Wei Wan
Changxin Tang
An Qiu
Yongkang Xiang
The Size Effects of Point Defect on the Mechanical Properties of Monocrystalline Silicon: A Molecular Dynamics Study
Materials
monocrystalline silicon
molecular dynamics
point defect
mechanical properties
author_facet Wei Wan
Changxin Tang
An Qiu
Yongkang Xiang
author_sort Wei Wan
title The Size Effects of Point Defect on the Mechanical Properties of Monocrystalline Silicon: A Molecular Dynamics Study
title_short The Size Effects of Point Defect on the Mechanical Properties of Monocrystalline Silicon: A Molecular Dynamics Study
title_full The Size Effects of Point Defect on the Mechanical Properties of Monocrystalline Silicon: A Molecular Dynamics Study
title_fullStr The Size Effects of Point Defect on the Mechanical Properties of Monocrystalline Silicon: A Molecular Dynamics Study
title_full_unstemmed The Size Effects of Point Defect on the Mechanical Properties of Monocrystalline Silicon: A Molecular Dynamics Study
title_sort size effects of point defect on the mechanical properties of monocrystalline silicon: a molecular dynamics study
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2021-06-01
description The molecular dynamics method was used to simulate the fracture process of monocrystalline silicon with different sizes of point defect under a constant strain rate. The mechanism of the defect size on the mechanical properties of monocrystalline silicon was also investigated. The results suggested that the point defect significantly reduces the yield strength of monocrystalline silicon. The relationships between the yield strength variation and the size of point defect fitted an exponential function. By statistically analyzing the internal stress in monocrystalline silicon, it was found that the stress concentration induced by the point defect led to the decrease in the yield strength. A comparison between the theoretical strength given by the four theories of strength and actual strength proved that the Mises theory was the best theory of strength to describe the yield strength of monocrystalline silicon. The dynamic evolution process of Mises stress and dislocation showed that the fracture was caused by the concentration effect of Mises stress and dislocation slip. Finally, the fractured microstructures were similar to a kind of two-dimensional grid which distributed along the cleavage planes while visualizing the specimens. The results of this article provide a reference for evaluating the size effects of point defects on the mechanical properties of monocrystalline silicon.
topic monocrystalline silicon
molecular dynamics
point defect
mechanical properties
url https://www.mdpi.com/1996-1944/14/11/3011
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