DocumentCode :
14854
Title :
Near-Field Directive Beams From Passive and Active Asymmetric Optical Nanoantennas
Author :
Campbell, Sawyer D. ; Ziolkowski, Richard W.
Author_Institution :
Coll. of Opt. Sci., Univ. of Arizona, Tucson, AZ, USA
Volume :
21
Issue :
4
fYear :
2015
fDate :
July-Aug. 2015
Firstpage :
312
Lastpage :
323
Abstract :
Core-shell, plasmonic-based nanoantennas have been shown to be resonant, resulting in extremely large enhancements of their scattered power. Nevertheless, they primarily radiate as electric dipoles due to their subwavelength sizes. We report how, through the introduction of asymmetry into these nanoantennas, it is possible to achieve highly directive optical beams in their near fields. In particular, we perforate the outer metallic coating of a core-shell nanoparticle and add gain material into its core region. It is demonstrated that this active holey-coated nanoparticle configuration effectively captures the incident field, amplifies it, and then channels this power into an intense near-field beam. The performance characteristics of these nanobeamers are compared to the nanojet behaviors experimentally realized with multimoded, electrically large dielectric particles. The intensities of the near-field power flow generated by these highly subwavelength nanobeamers are shown to be significantly larger than those produced by their multimode, micron-sized nanojet counterparts. Because of these enhanced field localization properties, a sensor array example is considered to demonstrate the efficacy of augmenting its detector elements with these nanobeamers.
Keywords :
active antenna arrays; dipole antenna arrays; directive antennas; metamaterial antennas; nanoparticles; nanophotonics; nanosensors; optical films; optical sensors; plasmonics; sensor arrays; active asymmetric optical nanoantennas; active holey-coated nanoparticle configuration; core region; core-shell nanoparticle; core-shell plasmonic-based nanoantennas; detector elements; directive optical beams; electric dipoles; field localization properties; gain material; incident field; intense near-field beam; metallic coating; near-field directive beams; near-field power flow; passive asymmetric optical nanoantennas; scattered power; sensor array; subwavelength nanobeamers; subwavelength size; Absorption; Dielectrics; Materials; Optical beams; Plasmons; Scattering; Vectors; Directive antennas; electromagnetic scattering; nanoantenna; nanophotonics; optical sensors; plasmons;
fLanguage :
English
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
1077-260X
Type :
jour
DOI :
10.1109/JSTQE.2014.2345885
Filename :
6872567
Link To Document :
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