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Title page for ETD etd-06302010-160224


Type of Document Thesis
Author Henke, Steven Frederick
Author's Email Address shenke@fsu.edu
URN etd-06302010-160224
Title Stress-Driven Surface Instabilities in Epitaxial Thin Films
Degree Master of Science
Department Scientific Computing, Department of
Advisory Committee
Advisor Name Title
Anter El-Azab Committee Chair
Gordon Erlebacher Committee Member
Ming Ye Committee Member
Keywords
  • Thin Films
  • Instability
  • Epitaxy
Date of Defense 2010-06-28
Availability unrestricted
Abstract
Heteroepitaxial thin films are essential components in many technological

applications including optical, electronic and other functional devices. These

films are also becoming important in the coating technologies for

high-temperature materials applications. Typical heteroepitaxial systems

involve one or more solid phases deposited on support structure called the

substrate. Often the lattice and thermal mismatch in these systems results in

significant elastic strains that, under the appropriate temperature conditions,

drive mass transport by diffusion. Surface diffusion in these systems is

usually a dominant mass transport mechanism that leads to morphological

evolution of the surface. This evolution is called stress-driven

morphological growth, and it has received much attention by materials

modelers. In the current work, the problem of stress-driven morphological

evolution in strained thin films is revisited; we develop a generalized

formulation of this problem in the non-linear regime based upon a curvilinear

coordinate formalism and finite element solution of the elastic sub-problem.

This combination of methods facilitates the analysis of the onset of the

instability and the early stage temporal evolution of the film surface. We

apply our numerical scheme to surface wave, dot, pit, and ring morphologies and

demonstrate the effects of model parameters on the incipient instabilities.

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