Title :
Modeling of Au-Nanowire Waveguide for Plasmonic Sensing in Liquids
Author :
Yipei Wang ; Xin Guo ; Limin Tong ; Jingyi Lou
Author_Institution :
Dept. of Opt. Eng., Zhejiang Univ., Hangzhou, China
Abstract :
We theoretically demonstrate a plasmonic nanosensor, using Au-nanowire waveguide to measure the refractive-index changes in aqueous solutions. Based on finite element method simulations, waveguiding properties of Au nanowires for plasmonic sensing in liquids are investigated, with Au nanowire diameter down to 10 nm. A plasmonic nanowire Mach-Zehnder interferometer is proposed to measure the phase shift introduced by the index changes of surroundings. We find that, for a typical Au nanowire with 100-nm diameter, the calculated sensitivity is as high as 5.5π/(μm·RIU), and the sensitivity can be increased by reducing the nanowire diameter. Besides, for reference, we have also investigated Au nanowire plasmonic sensing in other liquids including ethylene glycol and index-matching oil. The nanowire plasmonic sensing scheme proposed here represents a high-sensitivity nanosensor with ultra-small footprint, and may open new opportunities for miniaturized sensing platform based on highly confined 1-D waveguiding plasmons.
Keywords :
Mach-Zehnder interferometers; finite element analysis; gold; nanophotonics; nanosensors; nanowires; oils; optical sensors; optical waveguides; plasmonics; refractive index; Au; Au nanowire diameter; Au nanowire plasmonic sensing; Au-nanowire waveguide modeling; aqueous solutions; ethylene glycol; finite element method simulations; high-sensitivity nanosensor; highly confined 1-D waveguiding plasmons; index-matching oil; liquids; miniaturized sensing platform; nanowire plasmonic sensing scheme; phase shift; plasmonic nanosensor; plasmonic nanowire Mach-Zehnder interferometer; refractive-index changes; size 10 nm; size 100 nm; surrounding index changes; ultrasmall footprint; waveguiding properties; Gold; Liquids; Nanowires; Optical surface waves; Optical waveguides; Plasmons; Sensors; Nanowires; sensors; surface plasmons; waveguides;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2014.2354696