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Single-Ended and Differentially Operated Microwave Microfluidic Sensors for Biomedical Applications

BACKGROUND: This research is focused on the design of highly sensitive microfluidic sensors for the applications in liquid dielectric characterizations including biomedical samples. METHODS: Considering the narrow-band operation of microfluidic sensors based on microwave resonators, in this study, m...

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Autor principal: Shaterian, Zahra
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Wolters Kluwer - Medknow 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10336911/
https://www.ncbi.nlm.nih.gov/pubmed/37448540
http://dx.doi.org/10.4103/jmss.jmss_186_21
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author Shaterian, Zahra
author_facet Shaterian, Zahra
author_sort Shaterian, Zahra
collection PubMed
description BACKGROUND: This research is focused on the design of highly sensitive microfluidic sensors for the applications in liquid dielectric characterizations including biomedical samples. METHODS: Considering the narrow-band operation of microfluidic sensors based on microwave resonators, in this study, microfluidic sensors based on the variation of transmission phase in microwave transmission lines (TLs) are proposed. It is shown that among different microwave TLs, slot-lines are an appropriate type of TL for sensing applications because a major portion of the electromagnetic (EM) field passes above the line, where a microfluidic channel can be easily devised. RESULTS: The proposed concept is presented and the functionality of the proposed sensor is validated through full-wave EM simulations. Moreover, the effects of the dimensions of the microfluidic channel and the thickness of the substrate on the sensitivity of the sensor are studied. Furthermore, taking the advantages of differential circuits and systems into account, a differential version of the microfluidic sensor is also presented. It is shown that the sensitivity of the sensor can be adjusted according to the application. Specifically speaking, the sensitivity of the proposed microfluidic sensor is almost linearly proportional to the length of the channel, i.e., the sensitivity can be doubled by doubling the channel length. CONCLUSIONS: In this research, it is shown that using slot-line TLs highly sensitive microfluidic sensors can be designed for the applications in liquid dielectric characterizations, especially for biomedical samples where small variations of permittivity have to be detected.
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spelling pubmed-103369112023-07-13 Single-Ended and Differentially Operated Microwave Microfluidic Sensors for Biomedical Applications Shaterian, Zahra J Med Signals Sens Original Article BACKGROUND: This research is focused on the design of highly sensitive microfluidic sensors for the applications in liquid dielectric characterizations including biomedical samples. METHODS: Considering the narrow-band operation of microfluidic sensors based on microwave resonators, in this study, microfluidic sensors based on the variation of transmission phase in microwave transmission lines (TLs) are proposed. It is shown that among different microwave TLs, slot-lines are an appropriate type of TL for sensing applications because a major portion of the electromagnetic (EM) field passes above the line, where a microfluidic channel can be easily devised. RESULTS: The proposed concept is presented and the functionality of the proposed sensor is validated through full-wave EM simulations. Moreover, the effects of the dimensions of the microfluidic channel and the thickness of the substrate on the sensitivity of the sensor are studied. Furthermore, taking the advantages of differential circuits and systems into account, a differential version of the microfluidic sensor is also presented. It is shown that the sensitivity of the sensor can be adjusted according to the application. Specifically speaking, the sensitivity of the proposed microfluidic sensor is almost linearly proportional to the length of the channel, i.e., the sensitivity can be doubled by doubling the channel length. CONCLUSIONS: In this research, it is shown that using slot-line TLs highly sensitive microfluidic sensors can be designed for the applications in liquid dielectric characterizations, especially for biomedical samples where small variations of permittivity have to be detected. Wolters Kluwer - Medknow 2023-05-29 /pmc/articles/PMC10336911/ /pubmed/37448540 http://dx.doi.org/10.4103/jmss.jmss_186_21 Text en Copyright: © 2023 Journal of Medical Signals & Sensors https://creativecommons.org/licenses/by-nc-sa/4.0/This is an open access journal, and articles are distributed under the terms of the Creative Commons Attribution-NonCommercial-ShareAlike 4.0 License, which allows others to remix, tweak, and build upon the work non-commercially, as long as appropriate credit is given and the new creations are licensed under the identical terms.
spellingShingle Original Article
Shaterian, Zahra
Single-Ended and Differentially Operated Microwave Microfluidic Sensors for Biomedical Applications
title Single-Ended and Differentially Operated Microwave Microfluidic Sensors for Biomedical Applications
title_full Single-Ended and Differentially Operated Microwave Microfluidic Sensors for Biomedical Applications
title_fullStr Single-Ended and Differentially Operated Microwave Microfluidic Sensors for Biomedical Applications
title_full_unstemmed Single-Ended and Differentially Operated Microwave Microfluidic Sensors for Biomedical Applications
title_short Single-Ended and Differentially Operated Microwave Microfluidic Sensors for Biomedical Applications
title_sort single-ended and differentially operated microwave microfluidic sensors for biomedical applications
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10336911/
https://www.ncbi.nlm.nih.gov/pubmed/37448540
http://dx.doi.org/10.4103/jmss.jmss_186_21
work_keys_str_mv AT shaterianzahra singleendedanddifferentiallyoperatedmicrowavemicrofluidicsensorsforbiomedicalapplications