DocumentCode :
31179
Title :
High-Sensitivity Metamaterial-Inspired Sensor for Microfluidic Dielectric Characterization
Author :
Ebrahimi, Amir ; Withayachumnankul, Withawat ; Al-Sarawi, Said ; Abbott, Derek
Author_Institution :
Sch. of Electr. & Electron. Eng., Univ. of Adelaide, Adelaide, SA, Australia
Volume :
14
Issue :
5
fYear :
2014
fDate :
May-14
Firstpage :
1345
Lastpage :
1351
Abstract :
A new metamaterial-inspired microwave microfluidic sensor is proposed in this paper. The main part of the device is a microstrip coupled complementary split-ring resonator (CSRR). At resonance, a strong electric field will be established along the sides of CSRR producing a very sensitive area to a change in the nearby dielectric material. A micro-channel is positioned over this area for microfluidic sensing. The liquid sample flowing inside the channel modifies the resonance frequency and peak attenuation of the CSRR resonance. The dielectric properties of the liquid sample can be estimated by establishing an empirical relation between the resonance characteristics and the sample complex permittivity. The designed microfluidic sensor requires a very small amount of sample for testing since the cross-sectional area of the sensing channel is over five orders of magnitude smaller than the square of the wavelength. The proposed microfluidic sensing concept is compatible with lab-on-a-chip platforms owing to its compactness.
Keywords :
lab-on-a-chip; microchannel flow; microsensors; microstrip resonators; microwave detectors; microwave metamaterials; permittivity measurement; channel flow; dielectric properties; high-sensitivity metamaterial-inspired sensor; lab-on-a-chip platforms; metamaterial-inspired microwave microfluidic sensor; microfluidic dielectric characterization; microstrip coupled complementary split-ring resonator; peak attenuation; permittivity; resonance frequency; Attenuation; Liquids; Microstrip; Permittivity; Permittivity measurement; Resonant frequency; Sensors; Complementary split-ring resonator (CSRR); dielectric characterization; metamaterial; microfluidic sensor;
fLanguage :
English
Journal_Title :
Sensors Journal, IEEE
Publisher :
ieee
ISSN :
1530-437X
Type :
jour
DOI :
10.1109/JSEN.2013.2295312
Filename :
6687229
Link To Document :
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