DocumentCode :
78499
Title :
Plasmon Modes Hybridization Influence on Nano-Bio-Sensors Specification
Author :
SalmanOgli, A. ; Rostami, Ahmad
Author_Institution :
Photonics & Nanocrystal Res. Lab., Univ. of Tabriz, Tabriz, Iran
Volume :
12
Issue :
5
fYear :
2013
fDate :
Sept. 2013
Firstpage :
858
Lastpage :
866
Abstract :
In this paper, the interaction between surface plasmon resonance and fluorescence of the dye molecule is investigated and simulated. Due to the severe change of the nanoparticle-dye system´s optical properties, it can be used in the important biomedical applications. The presence of a nanoparticle in the surface plasmon resonance state locally concentrates electromagnetic waves of the incident field and can increase the absorption and emission fluorescence of a dye molecule (as adding an antenna to a receiver). Therefore, the motivation of this study is the use of the nanoparticle´s plasmon hybridization modes to reach to the highest near-field augmentation which is essential to the improvement of the dye´s lifetime and its quantum efficiency for deep-tissue imaging which dramatically need augmentation of the dye´s emitted photon. Specifically, we have investigated some nanoparticles which have a strong plasmon resonance to extend into visible to near-infrared spectra. Furthermore, the splitting of the surface plasmon into two distinctive modes as a result of the difference in polarization between the nanoparticle´s outer and inner surface are probed. We utilize Si/SiO2/Ag as a novel proposal of core/shell nanoparticle for the emission enhancement of weak emitting fluorophores. The fluorescent enhancement of dye molecules as a function of distance from the nanoparticle´s surface, NPs´ radius, and spacer thickness between the inner and outer shell is studied.
Keywords :
dyes; elemental semiconductors; fluorescence; infrared spectra; nanobiotechnology; nanoparticles; silicon; silicon compounds; silver; surface plasmon resonance; visible spectra; Si-SiO2-Ag; absorption fluorescence; antenna; biosensor specification; core-shell nanoparticle; deep-tissue imaging; dye lifetime; dye molecule; electromagnetic waves; emission enhancement; emission fluorescence; fluorophores; nanoparticle radius; nanoparticle surface; nanoparticle-dye system; nanosensor specification; near-field augmentation; near-infrared spectra; optical properties; photon emission; plasmon mode hybridization; polarization; quantum efficiency; receiver; spacer thickness; surface plasmon resonance; visible spectra; Fluorescence; Gold; Integrated optics; Optical polarization; Optical surface waves; Plasmons; Stimulated emission; Indocyanine (ICY); nanoparticles (NPs); near-infrared (NIR); quantum dot (QD); surface plasmon resonance (SPR);
fLanguage :
English
Journal_Title :
Nanotechnology, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-125X
Type :
jour
DOI :
10.1109/TNANO.2013.2277760
Filename :
6576870
Link To Document :
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