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Metamaterial Sensing of Cyanobacteria Using THz Thermal Curve Analysisoa mark
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Publication Year
2024-11-01
Publisher
Multidisciplinary Digital Publishing Institute (MDPI)
Citation
Biosensors, Vol.14
Keyword
cyanobacteriametamaterialsterahertz
Mesh Keyword
Bacterial filmsCurve analysisCyanobacteriumDielectric sensingDifferential thermal curvesFrequency shiftLabel-free sensingSaturation valuesTera HertzThermal curvesBiosensing TechniquesCyanobacteriaTemperatureTerahertz Spectroscopy
All Science Classification Codes (ASJC)
Analytical ChemistryBiotechnologyBiomedical EngineeringInstrumentationEngineering (miscellaneous)Clinical Biochemistry
Abstract
In this study, we perform thermal curve analyses based on terahertz (THz) metamaterials for the label-free sensing of cyanobacteria. In the presence of bacterial films, significant frequency shifts occur at the metamaterial resonance, but these shifts become saturated at a certain thickness owing to the limited sensing volume of the metamaterial. The saturation value was used to determine the dielectric constants of various cyanobacteria, which are crucial for dielectric sensing. For label-free identification, we performed thermal curve analysis of THz metamaterials coated with cyanobacteria. The resonant frequency of the cyanobacteria-coated metasensor changed with temperature. The differential thermal curves (DTC) obtained from temperature-dependent resonance exhibited peaks unique to individual cyanobacteria, which helped identify individual species. Interestingly, despite being classified as Gram negative, cyanobacteria exhibit DTC profiles similar to those of Gram-positive bacteria, likely due to their unique extracellular structures. DTC analysis can reveal unique characteristics of various cyanobacteria that are not easily accessible by conventional approaches.
ISSN
2079-6374
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/34618
DOI
https://doi.org/10.3390/bios14110519
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Type
Article
Funding
This work was supported by the Midcareer Researcher Program (RS-2024-00335942) and Basic Science Research Program (2021R1A6A1A10044950) through a National Research Foundation grant funded by the Korea Government.
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Ahn, Yeonghwan Image
Ahn, Yeonghwan안영환
Department of Physics
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