DocumentCode
21944
Title
Design and Chromatic Aberration Analysis of Plasmonic Lenses Using the Finite Element Method
Author
Rubio-Mercedes, C.E. ; Rodriguez-Esquerre, Vitaly F. ; Lima, Ivan T. ; Hernandez-Figueroa, Hugo E.
Author_Institution
Math. & Eng. Phys. Programs, State Univ. of Mato Grosso do Sul-UEMS, Dourados, Brazil
Volume
31
Issue
7
fYear
2013
fDate
1-Apr-13
Firstpage
1114
Lastpage
1119
Abstract
We designed plasmonic lenses and analyzed their chromatic aberration using the finite element method (FEM) in frequency domain with perfectly matched layers (PML). Plasmonic lenses permit subwavelength focusing of light in the visible and in the near infrared. The focal distance of these devices depends on the wavelength operation due to the dispersive characteristics of the lens structures and the refractive index of their constituent materials. With a uniform incident wave normal to the lens surface, focusing of light by surface plasmon polariton (SPPs) through a plasmonic lens is obtained in the axial direction. The design of three plasmonic lenses in Silver (Ag), Gold (Au) and Copper (Cu) films at two central operation wavelengths of 650 nm and 810 nm, in both, cylindrical and rectangular geometries were considered and the chromatic aberration of the lenses were analyzed by monitoring the peak position of the electromagnetic (EM) field when the wavelength changes from 625 nm to 675 nm and from 785 nm to 835 nm..
Keywords
aberrations; copper; electromagnetic fields; finite element analysis; gold; lenses; metallic thin films; optical design techniques; optical dispersion; optical focusing; plasmonics; polaritons; refractive index; silver; surface plasmons; Ag; Au; Cu; FEM; chromatic aberration analysis; copper films; cylindrical geometry; dispersive characteristics; electromagnetic field; finite element method; focal distance; frequency domain; gold films; near-infrared region; optical design; peak position monitoring; perfectly matched layers; plasmonic lenses; rectangular geometry; refractive index; silver films; subwavelength light focusing; surface plasmon polariton; visible region; wavelength 810 nm; Finite element methods; Gold; Lenses; Materials; Mathematical model; Permittivity; Plasmons; Chromatic aberration; finite element method; numerical analysis; plasmonic lenses; surface plasmon polaritons;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/JLT.2013.2241732
Filename
6416910
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