Mathematical Modeling of Mass Change in Biosensor Quartz Crystal Microbalance Using Matlab

The usage of quartz crystal resonators in different fields has developed remarkably. Even though the usage of a quartz crystal microbalance (QCM) dating back to fifties, the current attention is focusing on the liquid state applications. Broadly-based on Kanazawa’s paradigmatic treatment, this inves...

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Main Authors: Azeez Abdullah Barzinjy, Haidar Jalal Ismael, Mohammed Abdullah Hamad, Samir Mustafa Hamad, Mudhaffer Mustafa Ameen
Format: Article
Language:English
Published: Tishk International University 2017-12-01
Series:Eurasian Journal of Science and Engineering
Subjects:
Online Access:http://eajse.org/wp-content/uploads/2015/12/Mathematical-Modeling-of-Mass-Change.pdf
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author Azeez Abdullah Barzinjy
Haidar Jalal Ismael
Mohammed Abdullah Hamad
Samir Mustafa Hamad
Mudhaffer Mustafa Ameen
author_facet Azeez Abdullah Barzinjy
Haidar Jalal Ismael
Mohammed Abdullah Hamad
Samir Mustafa Hamad
Mudhaffer Mustafa Ameen
author_sort Azeez Abdullah Barzinjy
collection DOAJ
description The usage of quartz crystal resonators in different fields has developed remarkably. Even though the usage of a quartz crystal microbalance (QCM) dating back to fifties, the current attention is focusing on the liquid state applications. Broadly-based on Kanazawa’s paradigmatic treatment, this investigation confers an emulation model to the hypothesis of the loaded QCM utilizing dissimilar bulk films on its superficies and submerged in a solution.The correlation between the variation in sonorous frequency and the mass of particles adhesive on the surface of the QCM is the heart of the transferal procedure of genetic material from one organism to another in piezoelectric biosensors.Particularly, electrical characteristics, such as phase angle, admittance and the sonorous frequency of loaded and unloaded QCM, are imitated by Matlab program. This data-package calculates the admittance band of a fluctuating QCM layered with a superlative mass and that of a fluctuating QCM layered with a film of a specified solid to reach at a modification factor as a function of layer height. Accordingly, the loaded QCM can be utilized as a biosensor, and the modification to the Sauerbrey equation is not as much of ~3% for the polystyrene layer up to a height of ~15 μm. The simulation results are in excellent agreement with available experimental data.
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spelling doaj.art-37944dc5580640ffbd5651daf4152fd22023-08-02T09:33:22ZengTishk International UniversityEurasian Journal of Science and Engineering2414-56292414-56022017-12-013220421410.23918/eajse.v3i2p204Mathematical Modeling of Mass Change in Biosensor Quartz Crystal Microbalance Using MatlabAzeez Abdullah BarzinjyHaidar Jalal IsmaelMohammed Abdullah Hamad Samir Mustafa Hamad Mudhaffer Mustafa AmeenThe usage of quartz crystal resonators in different fields has developed remarkably. Even though the usage of a quartz crystal microbalance (QCM) dating back to fifties, the current attention is focusing on the liquid state applications. Broadly-based on Kanazawa’s paradigmatic treatment, this investigation confers an emulation model to the hypothesis of the loaded QCM utilizing dissimilar bulk films on its superficies and submerged in a solution.The correlation between the variation in sonorous frequency and the mass of particles adhesive on the surface of the QCM is the heart of the transferal procedure of genetic material from one organism to another in piezoelectric biosensors.Particularly, electrical characteristics, such as phase angle, admittance and the sonorous frequency of loaded and unloaded QCM, are imitated by Matlab program. This data-package calculates the admittance band of a fluctuating QCM layered with a superlative mass and that of a fluctuating QCM layered with a film of a specified solid to reach at a modification factor as a function of layer height. Accordingly, the loaded QCM can be utilized as a biosensor, and the modification to the Sauerbrey equation is not as much of ~3% for the polystyrene layer up to a height of ~15 μm. The simulation results are in excellent agreement with available experimental data.http://eajse.org/wp-content/uploads/2015/12/Mathematical-Modeling-of-Mass-Change.pdfAT-Cut Quartz CrystalsQCMSauerbrey EquationMass ChangeMatlab Program
spellingShingle Azeez Abdullah Barzinjy
Haidar Jalal Ismael
Mohammed Abdullah Hamad
Samir Mustafa Hamad
Mudhaffer Mustafa Ameen
Mathematical Modeling of Mass Change in Biosensor Quartz Crystal Microbalance Using Matlab
Eurasian Journal of Science and Engineering
AT-Cut Quartz Crystals
QCM
Sauerbrey Equation
Mass Change
Matlab Program
title Mathematical Modeling of Mass Change in Biosensor Quartz Crystal Microbalance Using Matlab
title_full Mathematical Modeling of Mass Change in Biosensor Quartz Crystal Microbalance Using Matlab
title_fullStr Mathematical Modeling of Mass Change in Biosensor Quartz Crystal Microbalance Using Matlab
title_full_unstemmed Mathematical Modeling of Mass Change in Biosensor Quartz Crystal Microbalance Using Matlab
title_short Mathematical Modeling of Mass Change in Biosensor Quartz Crystal Microbalance Using Matlab
title_sort mathematical modeling of mass change in biosensor quartz crystal microbalance using matlab
topic AT-Cut Quartz Crystals
QCM
Sauerbrey Equation
Mass Change
Matlab Program
url http://eajse.org/wp-content/uploads/2015/12/Mathematical-Modeling-of-Mass-Change.pdf
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AT haidarjalalismael mathematicalmodelingofmasschangeinbiosensorquartzcrystalmicrobalanceusingmatlab
AT mohammedabdullahhamad mathematicalmodelingofmasschangeinbiosensorquartzcrystalmicrobalanceusingmatlab
AT samirmustafahamad mathematicalmodelingofmasschangeinbiosensorquartzcrystalmicrobalanceusingmatlab
AT mudhaffermustafaameen mathematicalmodelingofmasschangeinbiosensorquartzcrystalmicrobalanceusingmatlab