DocumentCode :
3605357
Title :
Ultrahigh- Q and Low-Mode-Volume Parabolic Radius-Modulated Single Photonic Crystal Slot Nanobeam Cavity for High-Sensitivity Refractive Index Sensing
Author :
Daquan Yang ; Pan Zhang ; Huiping Tian ; Yuefeng Ji ; Qimin Quan
Author_Institution :
State Key Lab. of Inf. Photonics & Opt. Commun., Beijing Univ. of Posts & Telecommun., Beijing, China
Volume :
7
Issue :
5
fYear :
2015
Firstpage :
1
Lastpage :
8
Abstract :
We present a novel optical sensor based on the design of ultrahigh-Q and low-mode-volume 1-D single photonic crystal (PhC) slot nanobeam cavity (SNC) in which the air-hole radius is parabolically tapered. The performance of the device is investigated theoretically. In order to achieve high Q-factor and high sensitivity simultaneously, the slot geometry is exploited to make the optical field strongly localized inside the low index region and overlaps sufficiently with the analytes. With the three-dimensional finite-difference time-domain (3D-FDTD) method, we demonstrate that the proposed single 1-D PhC-SNC sensor device possess an ultrahigh sensitivity (S) up to ~900 nm/RIU (refractive index unit, RIU) and a high Q-factor in air up to > 107 at the telecom wavelength range. The optimized figure of merit is > 107. In addition, an ultrasmall mode volume of Vm ~0.01 (λ/ηair)3 has been achieved, which is more than three orders of magnitude smaller than our previous works [Appl. Phys. Lett. 105, 063118 (2014)] and, thus, is potentially an ideal platform for realizing ultracompact laboratory-on-a-chip applications with dense arrays of functionalized spots for multiplexed gas sensing.
Keywords :
finite difference time-domain analysis; nanophotonics; optical sensors; photonic crystals; refractive index measurement; 1D single photonic crystal; 3D-FDTD method; air-hole radius; high-sensitivity refractive index sensing; low-mode-volume single photonic crystal; optical sensor; parabolic radius-modulated single photonic crystal; parabolic taper; slot geometry; slot nanobeam cavity; three-dimensional finite-difference time-domain method; ultrahigh-Q single photonic crystal; Cavity resonators; Optimized production technology; Photonic crystals; Q-factor; Refractive index; Sensitivity; Sensors; 3D-FDTD; Integrated nanophotonic; Nanocavities; Photonic crystals; Sensors; integrated nanophotonic; nanocavities; sensors; three-dimensional finite-difference time-domain (3D-FDTD);
fLanguage :
English
Journal_Title :
Photonics Journal, IEEE
Publisher :
ieee
ISSN :
1943-0655
Type :
jour
DOI :
10.1109/JPHOT.2015.2476761
Filename :
7239520
Link To Document :
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