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Developing a Novel Terahertz Fabry–Perot Microcavity Biosensor by Incorporating Porous Film for Yeast Sensingoa mark
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Publication Year
2023-07-01
Publisher
Multidisciplinary Digital Publishing Institute (MDPI)
Citation
Sensors, Vol.23
Keyword
Fabry–Perot cavitymicroorganismsporous film
Mesh Keyword
Fabry-Perot cavityFabry-Perot microcavitiesFrequency shiftMicrobial filmsMicroorganisms detectionsPolytetrafluoroethylene filmsPorous filmResonant frequency shiftTera HertzTerahertz rangeElectricityMotion PicturesPolytetrafluoroethylenePorositySaccharomyces cerevisiae
All Science Classification Codes (ASJC)
Analytical ChemistryInformation SystemsAtomic and Molecular Physics, and OpticsBiochemistryInstrumentationElectrical and Electronic Engineering
Abstract
We present a novel terahertz (THz) Fabry–Perot (FP) microcavity biosensor that uses a porous polytetrafluoroethylene (PTFE) supporting film to improve microorganism detection. The THz FP microcavity confines and enhances fields in the middle of the cavity, where the target microbial film is placed with the aid of a PTFE film having a dielectric constant close to unity in the THz range. The resonant frequency shift increased linearly with increasing amount of yeasts, without showing saturation behavior under our experimental conditions. These results agree well with finite-difference time-domain (FDTD) simulations. The sensor’s sensitivity was 11.7 GHz/μm, close to the optimal condition of 12.5 GHz/μm, when yeast was placed at the cavity’s center, but no frequency shift was observed when the yeast was coated on the mirror side. We derived an explicit relation for the frequency shift as a function of the index, amount, and location of the substances that is consistent with the electric field distribution across the cavity. We also produced THz transmission images of yeast-coated PTFE, mapping the frequency shift of the FP resonance and revealing the spatial distribution of yeast.
ISSN
1424-8220
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/33530
DOI
https://doi.org/10.3390/s23135797
Fulltext

Type
Article
Funding
This work was supported by the Midcareer Researcher Program (2020R1A2C1005735) and Basic Science Research Program (2021R1A6A1A10044950) through a National Research Foundation grant funded by the Korea Government. It is also supported by GRRC Program (GRRCAJOU2022B01, Photonics-Medical Convergence Technology Research Center) of Gyeonggi province Korea.
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Ahn, Yeonghwan Image
Ahn, Yeonghwan안영환
Department of Physics
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