Research Paper: Numerical Simulation of Thermo-elastic Stresses in Germanium Crystal Grown by Czochralski Technique during Different Lengths of Crystal

In the process of crystal growth by Czochralski technique, lower part and core of the crystal are warmer than other parts of crystal and its environment, which leads to expansion in different parts of the crystal. The result of this thermal gradient is strain, which eventually causes thermo-elastic...

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Main Authors: Mehdi Jamebozorgi, Mohammad Hossein Tavakoli
Format: Article
Language:fas
Published: Alzahra University 2021-03-01
Series:فیزیک کاربردی ایران
Subjects:
Online Access:https://jap.alzahra.ac.ir/article_5654_4eaf9af14b9c94b80135e1f3787a78b7.pdf
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author Mehdi Jamebozorgi
Mohammad Hossein Tavakoli
author_facet Mehdi Jamebozorgi
Mohammad Hossein Tavakoli
author_sort Mehdi Jamebozorgi
collection DOAJ
description In the process of crystal growth by Czochralski technique, lower part and core of the crystal are warmer than other parts of crystal and its environment, which leads to expansion in different parts of the crystal. The result of this thermal gradient is strain, which eventually causes thermo-elastic stress in the crystal. Increasing this stress leads to transition of the material from elastic limit and entering plastic area. To show thermo-elastic stress in crystals, a criterion called Von Misses stress is used. Using the solid mechanics approach, the mechanical response of crystal to the stresses can be determined through appropriate structural equations. In this paper, using appropriate structural equations, a set of numerical simulations of temperature field, thermal stress and dislocation density for a Czochralski setup used to grow Ge single crystal have been done for different heights of crystal. In order to investigate dislocation density, using a simple first-order approximation, in which the dislocation density is proportional to radial gradient of temperature is used. A two-dimensional steady state finite element method has been applied for all calculations. The numerical results reveal that the thermal field and thermal stress are mainly dependent on the crystal height, heat radiation and gas flow in the growth system. As the height of the crystal increases and the shape of the crystal-melt interface changes, we see an increase in thermo-elastic stress and dislocation density.
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spelling doaj.art-131573c6e48745f3899a9076dfb7ff152022-12-21T21:32:03ZfasAlzahra Universityفیزیک کاربردی ایران2783-10432783-10512021-03-0111172210.22051/ijap.2021.35886.12065654Research Paper: Numerical Simulation of Thermo-elastic Stresses in Germanium Crystal Grown by Czochralski Technique during Different Lengths of CrystalMehdi Jamebozorgi0Mohammad Hossein Tavakoli1Ph. D. Student, Department of Physics, Bu-Ali Sina University, Hamedan, Iran.Associate Professor, Department of Physics, Bu-Ali Sina University, Hamedan, IranIn the process of crystal growth by Czochralski technique, lower part and core of the crystal are warmer than other parts of crystal and its environment, which leads to expansion in different parts of the crystal. The result of this thermal gradient is strain, which eventually causes thermo-elastic stress in the crystal. Increasing this stress leads to transition of the material from elastic limit and entering plastic area. To show thermo-elastic stress in crystals, a criterion called Von Misses stress is used. Using the solid mechanics approach, the mechanical response of crystal to the stresses can be determined through appropriate structural equations. In this paper, using appropriate structural equations, a set of numerical simulations of temperature field, thermal stress and dislocation density for a Czochralski setup used to grow Ge single crystal have been done for different heights of crystal. In order to investigate dislocation density, using a simple first-order approximation, in which the dislocation density is proportional to radial gradient of temperature is used. A two-dimensional steady state finite element method has been applied for all calculations. The numerical results reveal that the thermal field and thermal stress are mainly dependent on the crystal height, heat radiation and gas flow in the growth system. As the height of the crystal increases and the shape of the crystal-melt interface changes, we see an increase in thermo-elastic stress and dislocation density.https://jap.alzahra.ac.ir/article_5654_4eaf9af14b9c94b80135e1f3787a78b7.pdfnumerical simulationthermo-elastic stressczochralski technique
spellingShingle Mehdi Jamebozorgi
Mohammad Hossein Tavakoli
Research Paper: Numerical Simulation of Thermo-elastic Stresses in Germanium Crystal Grown by Czochralski Technique during Different Lengths of Crystal
فیزیک کاربردی ایران
numerical simulation
thermo-elastic stress
czochralski technique
title Research Paper: Numerical Simulation of Thermo-elastic Stresses in Germanium Crystal Grown by Czochralski Technique during Different Lengths of Crystal
title_full Research Paper: Numerical Simulation of Thermo-elastic Stresses in Germanium Crystal Grown by Czochralski Technique during Different Lengths of Crystal
title_fullStr Research Paper: Numerical Simulation of Thermo-elastic Stresses in Germanium Crystal Grown by Czochralski Technique during Different Lengths of Crystal
title_full_unstemmed Research Paper: Numerical Simulation of Thermo-elastic Stresses in Germanium Crystal Grown by Czochralski Technique during Different Lengths of Crystal
title_short Research Paper: Numerical Simulation of Thermo-elastic Stresses in Germanium Crystal Grown by Czochralski Technique during Different Lengths of Crystal
title_sort research paper numerical simulation of thermo elastic stresses in germanium crystal grown by czochralski technique during different lengths of crystal
topic numerical simulation
thermo-elastic stress
czochralski technique
url https://jap.alzahra.ac.ir/article_5654_4eaf9af14b9c94b80135e1f3787a78b7.pdf
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