Full metadata
Title
Resistivity and optical transmittance simulation on metal embedded transparent conducting oxide thin films
Description
This work focuses on simulation of electrical resistivity and optical behaviors of thin films, where an Ag or Au thin layer is embedded in zinc oxide. Enhanced conductivity and transparency were earlier achieved with multilayer structured transparent conducting oxide (TCO) sandwich layer with metal (TCO/metal/TCO). Sputtering pattern of metal layer is simulated to obtain the morphology, covered area fraction, and the percolation strength. The resistivity as a function of the metal layer thickness fits the modeled trend of covered area fraction beyond the percolation threshold. This result not only presents the robustness of the simulation, but also demonstrates the influence of metal morphology in multilayer structure. Effective medium coefficients are defined from the coverage and percolation strength to obtain simulated optical transmittance which matches experimental observation. The coherence of resistivity and optical transmittance validates the simulation of the sputtered pattern and the incorporation of percolation theory in the model.
Date Created
2012
Contributors
- Fang, Chia-Ling (Author)
- Alford, Terry L. (Thesis advisor)
- Crozier, Peter (Committee member)
- Theodore, David (Committee member)
- Arizona State University (Publisher)
Topical Subject
- Materials Science
- Morphology
- optical transmittance
- Percolation
- resistivity
- Thin films
- Transparent conducting oxides
- Thin films--Electric properties--Computer simulation.
- Thin films
- Electric resistance--Measurement--Computer simulation.
- Electric resistance
- Thin films--Optical properties--Computer simulation.
- Thin films
Resource Type
Extent
viii, 52 p. : ill. (some col.)
Language
eng
Copyright Statement
In Copyright
Primary Member of
Peer-reviewed
No
Open Access
No
Handle
https://hdl.handle.net/2286/R.I.14668
Statement of Responsibility
by Chia-Ling Fang
Description Source
Retrieved on Dec. 14, 2012
Level of coding
full
Note
thesis
Partial requirement for: M.S., Arizona State University, 2012
bibliography
Includes bibliographical references (p. 50-52)
Field of study: Materials science and engineering
System Created
- 2012-08-24 06:18:54
System Modified
- 2021-08-30 01:48:01
- 3 years 2 months ago
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