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Microfabricated passive resonator biochip for sensitive radiofrequency detection and characterization of glucose

Passive sensors provide a new route for the characterization of concentration-dependent radiofrequency parameters with high reproducibility in real time. We propose a microfabricated resonator realized using integrated passive device technology for the sensitive detection and characterization of glu...

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Autores principales: Koirala, Gyan Raj, Kim, Eun-Seong, Dhakal, Rajendra, Chuluunbaatar, Zorigt, Jo, Yong Hwa, Kim, Sung-Soo, Kim, Nam-Young
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9086445/
https://www.ncbi.nlm.nih.gov/pubmed/35548156
http://dx.doi.org/10.1039/c8ra04243h
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author Koirala, Gyan Raj
Kim, Eun-Seong
Dhakal, Rajendra
Chuluunbaatar, Zorigt
Jo, Yong Hwa
Kim, Sung-Soo
Kim, Nam-Young
author_facet Koirala, Gyan Raj
Kim, Eun-Seong
Dhakal, Rajendra
Chuluunbaatar, Zorigt
Jo, Yong Hwa
Kim, Sung-Soo
Kim, Nam-Young
author_sort Koirala, Gyan Raj
collection PubMed
description Passive sensors provide a new route for the characterization of concentration-dependent radiofrequency parameters with high reproducibility in real time. We propose a microfabricated resonator realized using integrated passive device technology for the sensitive detection and characterization of glucose. Experimental results verify the high performance of the proposed biosensor, because radiofrequency parameters such as resonance frequency (from 0.541 to 1.05 GHz) and reflection coefficient (from −34.04 to −24.11 dB) linearly vary in response to deionized water and subsequent iterative measurements of different glucose concentrations (from 50 to 250 mg dL(−1)). The biosensor has a very low limit of detection of 8.46 mg dL(−1), a limit of quantitation of 25.63 mg dL(−1), a minimum frequency sensitivity of 29 MHz, and a minimum magnitude sensitivity of 0.22 dB. Moreover, the coupling coefficient consistently decreases with the increasing glucose concentration. We also used the measured radiofrequency parameters to determine the unknown permittivity of glucose samples through mathematical modeling. A decreasing trend in the loss tangent and an increasing trend in the characteristic wave impedance were observed with the increase of glucose concentration. The reproducibility of the sensor was verified through iterative measurements on the same sensor surface and subsequent study of surface morphology.
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spelling pubmed-90864452022-05-10 Microfabricated passive resonator biochip for sensitive radiofrequency detection and characterization of glucose Koirala, Gyan Raj Kim, Eun-Seong Dhakal, Rajendra Chuluunbaatar, Zorigt Jo, Yong Hwa Kim, Sung-Soo Kim, Nam-Young RSC Adv Chemistry Passive sensors provide a new route for the characterization of concentration-dependent radiofrequency parameters with high reproducibility in real time. We propose a microfabricated resonator realized using integrated passive device technology for the sensitive detection and characterization of glucose. Experimental results verify the high performance of the proposed biosensor, because radiofrequency parameters such as resonance frequency (from 0.541 to 1.05 GHz) and reflection coefficient (from −34.04 to −24.11 dB) linearly vary in response to deionized water and subsequent iterative measurements of different glucose concentrations (from 50 to 250 mg dL(−1)). The biosensor has a very low limit of detection of 8.46 mg dL(−1), a limit of quantitation of 25.63 mg dL(−1), a minimum frequency sensitivity of 29 MHz, and a minimum magnitude sensitivity of 0.22 dB. Moreover, the coupling coefficient consistently decreases with the increasing glucose concentration. We also used the measured radiofrequency parameters to determine the unknown permittivity of glucose samples through mathematical modeling. A decreasing trend in the loss tangent and an increasing trend in the characteristic wave impedance were observed with the increase of glucose concentration. The reproducibility of the sensor was verified through iterative measurements on the same sensor surface and subsequent study of surface morphology. The Royal Society of Chemistry 2018-09-24 /pmc/articles/PMC9086445/ /pubmed/35548156 http://dx.doi.org/10.1039/c8ra04243h Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Koirala, Gyan Raj
Kim, Eun-Seong
Dhakal, Rajendra
Chuluunbaatar, Zorigt
Jo, Yong Hwa
Kim, Sung-Soo
Kim, Nam-Young
Microfabricated passive resonator biochip for sensitive radiofrequency detection and characterization of glucose
title Microfabricated passive resonator biochip for sensitive radiofrequency detection and characterization of glucose
title_full Microfabricated passive resonator biochip for sensitive radiofrequency detection and characterization of glucose
title_fullStr Microfabricated passive resonator biochip for sensitive radiofrequency detection and characterization of glucose
title_full_unstemmed Microfabricated passive resonator biochip for sensitive radiofrequency detection and characterization of glucose
title_short Microfabricated passive resonator biochip for sensitive radiofrequency detection and characterization of glucose
title_sort microfabricated passive resonator biochip for sensitive radiofrequency detection and characterization of glucose
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9086445/
https://www.ncbi.nlm.nih.gov/pubmed/35548156
http://dx.doi.org/10.1039/c8ra04243h
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