Finite-Difference Time-Domain Modeling of Nickel Nanorods
Theoretical and experimental plasmonics is a growing field as a method to create near fields at sub-wavelength distances. In this thesis, a finite-difference time-domain method is used to simulate electromagnetic waves onto a thin film that present of nickel nanorods with sharp apexes. The absorbed,...
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ndltd-vcu.edu-oai-scholarscompass.vcu.edu-etd-37062017-03-17T08:26:28Z Finite-Difference Time-Domain Modeling of Nickel Nanorods Parris, Joseph Steele Theoretical and experimental plasmonics is a growing field as a method to create near fields at sub-wavelength distances. In this thesis, a finite-difference time-domain method is used to simulate electromagnetic waves onto a thin film that present of nickel nanorods with sharp apexes. The absorbed, transmitted, and reflected fields were shown to depend linearly on silver film thickness and nanotip length. The electric field is visualized along the tip to show strong charge density along the base of the tip’s apex and how that density changes for wavelength, metal, and source tilt. Lastly, the study shows gold film on the nanotip apex provides the largest enhancement of the electric field for the wavelengths 532, 572, and 633 nm. 2012-05-01T07:00:00Z text application/pdf http://scholarscompass.vcu.edu/etd/2707 http://scholarscompass.vcu.edu/cgi/viewcontent.cgi?article=3706&context=etd © The Author Theses and Dissertations VCU Scholars Compass Finite-difference time-domain nanorods nickel gold silver Meep electromagnetic wave surface plasmons plasmons electric field. Physical Sciences and Mathematics Physics |
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Finite-difference time-domain nanorods nickel gold silver Meep electromagnetic wave surface plasmons plasmons electric field. Physical Sciences and Mathematics Physics |
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Finite-difference time-domain nanorods nickel gold silver Meep electromagnetic wave surface plasmons plasmons electric field. Physical Sciences and Mathematics Physics Parris, Joseph Steele Finite-Difference Time-Domain Modeling of Nickel Nanorods |
description |
Theoretical and experimental plasmonics is a growing field as a method to create near fields at sub-wavelength distances. In this thesis, a finite-difference time-domain method is used to simulate electromagnetic waves onto a thin film that present of nickel nanorods with sharp apexes. The absorbed, transmitted, and reflected fields were shown to depend linearly on silver film thickness and nanotip length. The electric field is visualized along the tip to show strong charge density along the base of the tip’s apex and how that density changes for wavelength, metal, and source tilt. Lastly, the study shows gold film on the nanotip apex provides the largest enhancement of the electric field for the wavelengths 532, 572, and 633 nm. |
author |
Parris, Joseph Steele |
author_facet |
Parris, Joseph Steele |
author_sort |
Parris, Joseph Steele |
title |
Finite-Difference Time-Domain Modeling of Nickel Nanorods |
title_short |
Finite-Difference Time-Domain Modeling of Nickel Nanorods |
title_full |
Finite-Difference Time-Domain Modeling of Nickel Nanorods |
title_fullStr |
Finite-Difference Time-Domain Modeling of Nickel Nanorods |
title_full_unstemmed |
Finite-Difference Time-Domain Modeling of Nickel Nanorods |
title_sort |
finite-difference time-domain modeling of nickel nanorods |
publisher |
VCU Scholars Compass |
publishDate |
2012 |
url |
http://scholarscompass.vcu.edu/etd/2707 http://scholarscompass.vcu.edu/cgi/viewcontent.cgi?article=3706&context=etd |
work_keys_str_mv |
AT parrisjosephsteele finitedifferencetimedomainmodelingofnickelnanorods |
_version_ |
1718427845767725056 |