DocumentCode
1479202
Title
Analytical Vernier Effects of a PANDA Ring Resonator for Microforce Sensing Application
Author
Sirawattananon, Chaiwat ; Bahadoran, Mehdi ; Ali, Jalil ; Mitatha, Somsak ; Yupapin, Preecha P.
Author_Institution
Hybrid Comput. Res. Lab., King Mongkut´´s Inst. of Technol. Ladkrabang, Bangkok, Thailand
Volume
11
Issue
4
fYear
2012
fDate
7/1/2012 12:00:00 AM
Firstpage
707
Lastpage
712
Abstract
A nonsymmetric Vernier type of a modified add-drop filter known as a PANDA ring resonator is simulated and calculated to achieve wider free spectral range (FSR) in the order of magnitude of terahertz and micrometer with different ring radii. The expanded FSR is determined by the least common multiple of the FSRs of the individual ring resonators. The dependence of the transmission characteristics of the PANDA ring on the coupling coefficients of directional couplers is studied. The improvement in suppression of interstitial resonances by using high-order Vernier filters is investigated. In application, such a system can be employed as a sensing system for measuring the wavelength shift, where the low power consumption due to the low intensity source is the other advantage. The potential for microscale force sensing application, especially, for atom/molecule force sensors. The sensing unit structure can be in the few hundred micrometers to millimeters. The applied force can be in the form of distributed force within thin film material which is coated on the sensing unit.
Keywords
fibre optic sensors; force sensors; microsensors; optical resonators; PANDA ring resonator; analytical Vernier effects; applied force; atom force sensor; coupling coefficients; directional couplers; distributed force; expanded free spectral range; high-order Vernier filters; interstitial resonances; least common multiple; low intensity source; micrometer magnitude order; microscale force sensing application; modified add-drop filter; molecule force sensor; nonsymmetric Vernier type; power consumption; ring radii; sensing system; sensing unit structure; terahertz magnitude order; thin film material; transmission characteristics; wavelength shift; Couplers; Force; Optical filters; Optical ring resonators; Optical waveguides; Resonator filters; Sensors; Force sensor; Vernier effects; microsensor; optical sensor; ring resonator sensor;
fLanguage
English
Journal_Title
Nanotechnology, IEEE Transactions on
Publisher
ieee
ISSN
1536-125X
Type
jour
DOI
10.1109/TNANO.2012.2191976
Filename
6175142
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