Cargando…

Periodic and quasi-periodic one-dimensional phononic crystal biosensor: a comprehensive study for optimum sensor design

The resonant acoustic band gap materials have introduced an innovative generation of sensing technology. Based on the local resonant transmitted peaks, this study aims to comprehensively investigate the use of periodic and quasi-periodic one-dimension (1D) layered phononic crystals (PnCs) as a highl...

Descripción completa

Detalles Bibliográficos
Autores principales: Almawgani, Abdulkarem H. M., Fathy, Hamza Makhlouf, Elsayed, Hussein A., Ali, Ghassan Ahmed, Irfan, Muhammad, Mehaney, Ahmed
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10107728/
https://www.ncbi.nlm.nih.gov/pubmed/37077264
http://dx.doi.org/10.1039/d3ra01155k
_version_ 1785026669677903872
author Almawgani, Abdulkarem H. M.
Fathy, Hamza Makhlouf
Elsayed, Hussein A.
Ali, Ghassan Ahmed
Irfan, Muhammad
Mehaney, Ahmed
author_facet Almawgani, Abdulkarem H. M.
Fathy, Hamza Makhlouf
Elsayed, Hussein A.
Ali, Ghassan Ahmed
Irfan, Muhammad
Mehaney, Ahmed
author_sort Almawgani, Abdulkarem H. M.
collection PubMed
description The resonant acoustic band gap materials have introduced an innovative generation of sensing technology. Based on the local resonant transmitted peaks, this study aims to comprehensively investigate the use of periodic and quasi-periodic one-dimension (1D) layered phononic crystals (PnCs) as a highly sensitive biosensor for the detection and monitoring of sodium iodide (NaI) solution. Meanwhile, a defect layer is introduced defect layer inside the phononic crystal designs to be filled with NaI solution. The proposed biosensor is developed based on the periodic PnCs structure and quasi-periodic PnCs structure. The numerical findings demonstrated that the quasi-periodic PnCs structure provided a wide phononic band gap and a large sensitivity compared to the periodic one. Moreover, many resonance peaks through the transmission spectra are introduced for the quasi-periodic design. The results also show that the resonant peak frequency changes effectively with varying NaI solution concentrations in the third sequence of the quasi-periodic PnCs structure. The sensor can differentiate between concentrations ranging from 0 to 35% with a 5% step, which is extremely satisfying for precise detection and can contribute to a variety of issues in medical applications. Additionally, the sensor provided excellent performance for all the concentrations of the NaI solution. For instance, the sensor has a sensitivity of 959 MHz, a quality factor of 6947, a very low damping factor of 7.19 × 10(−5), and a figure of merit of 323.529.
format Online
Article
Text
id pubmed-10107728
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-101077282023-04-18 Periodic and quasi-periodic one-dimensional phononic crystal biosensor: a comprehensive study for optimum sensor design Almawgani, Abdulkarem H. M. Fathy, Hamza Makhlouf Elsayed, Hussein A. Ali, Ghassan Ahmed Irfan, Muhammad Mehaney, Ahmed RSC Adv Chemistry The resonant acoustic band gap materials have introduced an innovative generation of sensing technology. Based on the local resonant transmitted peaks, this study aims to comprehensively investigate the use of periodic and quasi-periodic one-dimension (1D) layered phononic crystals (PnCs) as a highly sensitive biosensor for the detection and monitoring of sodium iodide (NaI) solution. Meanwhile, a defect layer is introduced defect layer inside the phononic crystal designs to be filled with NaI solution. The proposed biosensor is developed based on the periodic PnCs structure and quasi-periodic PnCs structure. The numerical findings demonstrated that the quasi-periodic PnCs structure provided a wide phononic band gap and a large sensitivity compared to the periodic one. Moreover, many resonance peaks through the transmission spectra are introduced for the quasi-periodic design. The results also show that the resonant peak frequency changes effectively with varying NaI solution concentrations in the third sequence of the quasi-periodic PnCs structure. The sensor can differentiate between concentrations ranging from 0 to 35% with a 5% step, which is extremely satisfying for precise detection and can contribute to a variety of issues in medical applications. Additionally, the sensor provided excellent performance for all the concentrations of the NaI solution. For instance, the sensor has a sensitivity of 959 MHz, a quality factor of 6947, a very low damping factor of 7.19 × 10(−5), and a figure of merit of 323.529. The Royal Society of Chemistry 2023-04-17 /pmc/articles/PMC10107728/ /pubmed/37077264 http://dx.doi.org/10.1039/d3ra01155k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Almawgani, Abdulkarem H. M.
Fathy, Hamza Makhlouf
Elsayed, Hussein A.
Ali, Ghassan Ahmed
Irfan, Muhammad
Mehaney, Ahmed
Periodic and quasi-periodic one-dimensional phononic crystal biosensor: a comprehensive study for optimum sensor design
title Periodic and quasi-periodic one-dimensional phononic crystal biosensor: a comprehensive study for optimum sensor design
title_full Periodic and quasi-periodic one-dimensional phononic crystal biosensor: a comprehensive study for optimum sensor design
title_fullStr Periodic and quasi-periodic one-dimensional phononic crystal biosensor: a comprehensive study for optimum sensor design
title_full_unstemmed Periodic and quasi-periodic one-dimensional phononic crystal biosensor: a comprehensive study for optimum sensor design
title_short Periodic and quasi-periodic one-dimensional phononic crystal biosensor: a comprehensive study for optimum sensor design
title_sort periodic and quasi-periodic one-dimensional phononic crystal biosensor: a comprehensive study for optimum sensor design
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10107728/
https://www.ncbi.nlm.nih.gov/pubmed/37077264
http://dx.doi.org/10.1039/d3ra01155k
work_keys_str_mv AT almawganiabdulkaremhm periodicandquasiperiodiconedimensionalphononiccrystalbiosensoracomprehensivestudyforoptimumsensordesign
AT fathyhamzamakhlouf periodicandquasiperiodiconedimensionalphononiccrystalbiosensoracomprehensivestudyforoptimumsensordesign
AT elsayedhusseina periodicandquasiperiodiconedimensionalphononiccrystalbiosensoracomprehensivestudyforoptimumsensordesign
AT alighassanahmed periodicandquasiperiodiconedimensionalphononiccrystalbiosensoracomprehensivestudyforoptimumsensordesign
AT irfanmuhammad periodicandquasiperiodiconedimensionalphononiccrystalbiosensoracomprehensivestudyforoptimumsensordesign
AT mehaneyahmed periodicandquasiperiodiconedimensionalphononiccrystalbiosensoracomprehensivestudyforoptimumsensordesign