Optimization of focusing SAW propagation in piezoelectric medium for microfluidic applications

In this study, a 2D axisymmetric finite element model of annular surface acoustic wave (A-SAW) resonator to evaluate the SAW propagation was modeled and its focusing properties on lithium niobate substrate was optimized. The analysis concept is based on utilization of patterned annular interdigit...

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Main Authors: Abd Aziz, Norazreen, Bais, Badariah, Buyong, Muhamad Ramdzan, Majlis, Yeop Burhanuddin, Nordin, Anis Nurashikin
Format: Conference or Workshop Item
Language:English
Published: 2015
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Online Access:http://irep.iium.edu.my/45281/1/45281.pdf
http://irep.iium.edu.my/45281/
http://ieeexplore.ieee.org/xpl/articleDetails.jsp?arnumber=7161011&punumber%3D7153073%26filter%3DAND(p_IS_Number%3A7160955)%26pageNumber%3D3
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spelling my.iium.irep.452812015-10-26T08:31:40Z http://irep.iium.edu.my/45281/ Optimization of focusing SAW propagation in piezoelectric medium for microfluidic applications Abd Aziz, Norazreen Bais, Badariah Buyong, Muhamad Ramdzan Majlis, Yeop Burhanuddin Nordin, Anis Nurashikin TK7800 Electronics. Computer engineering. Computer hardware. Photoelectronic devices In this study, a 2D axisymmetric finite element model of annular surface acoustic wave (A-SAW) resonator to evaluate the SAW propagation was modeled and its focusing properties on lithium niobate substrate was optimized. The analysis concept is based on utilization of patterned annular interdigital electrodes on piezoelectric substrate’s surface to generate surface acoustic waves with high intensity in a confined localized area.From the simulation results, it can be observed that acoustic amplitude field, displacement contours and waves propagation direction are significantly influenced by the geometric parameters of the device. Increasing number of finger pairs of annular electrodes produces high displacement amplitude meanwhile devices with smaller electrodes’ gap of 25 μm induced steeper focusing gradient compared to devices with 50 μm electrodes’ gap. Acoustic waves from device with large inner diameter of 500 μm require more time to be focused at the center of the device. From the analysis, it can be concluded that small diffraction limited acoustic spot at the center of A-SAW device is suitable for microfluidics application that requires detection or manipulation of localized variations. 2015-04-27 Conference or Workshop Item REM application/pdf en http://irep.iium.edu.my/45281/1/45281.pdf Abd Aziz, Norazreen and Bais, Badariah and Buyong, Muhamad Ramdzan and Majlis, Yeop Burhanuddin and Nordin, Anis Nurashikin (2015) Optimization of focusing SAW propagation in piezoelectric medium for microfluidic applications. In: 2015 Symposium on Design, Test, Integration and Packaging of MEMS/MOEMS (DTIP), 27th-30th April 2015, Montpellier, France. http://ieeexplore.ieee.org/xpl/articleDetails.jsp?arnumber=7161011&punumber%3D7153073%26filter%3DAND(p_IS_Number%3A7160955)%26pageNumber%3D3
institution Universiti Islam Antarabangsa Malaysia
building IIUM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider International Islamic University Malaysia
content_source IIUM Repository (IREP)
url_provider http://irep.iium.edu.my/
language English
topic TK7800 Electronics. Computer engineering. Computer hardware. Photoelectronic devices
spellingShingle TK7800 Electronics. Computer engineering. Computer hardware. Photoelectronic devices
Abd Aziz, Norazreen
Bais, Badariah
Buyong, Muhamad Ramdzan
Majlis, Yeop Burhanuddin
Nordin, Anis Nurashikin
Optimization of focusing SAW propagation in piezoelectric medium for microfluidic applications
description In this study, a 2D axisymmetric finite element model of annular surface acoustic wave (A-SAW) resonator to evaluate the SAW propagation was modeled and its focusing properties on lithium niobate substrate was optimized. The analysis concept is based on utilization of patterned annular interdigital electrodes on piezoelectric substrate’s surface to generate surface acoustic waves with high intensity in a confined localized area.From the simulation results, it can be observed that acoustic amplitude field, displacement contours and waves propagation direction are significantly influenced by the geometric parameters of the device. Increasing number of finger pairs of annular electrodes produces high displacement amplitude meanwhile devices with smaller electrodes’ gap of 25 μm induced steeper focusing gradient compared to devices with 50 μm electrodes’ gap. Acoustic waves from device with large inner diameter of 500 μm require more time to be focused at the center of the device. From the analysis, it can be concluded that small diffraction limited acoustic spot at the center of A-SAW device is suitable for microfluidics application that requires detection or manipulation of localized variations.
format Conference or Workshop Item
author Abd Aziz, Norazreen
Bais, Badariah
Buyong, Muhamad Ramdzan
Majlis, Yeop Burhanuddin
Nordin, Anis Nurashikin
author_facet Abd Aziz, Norazreen
Bais, Badariah
Buyong, Muhamad Ramdzan
Majlis, Yeop Burhanuddin
Nordin, Anis Nurashikin
author_sort Abd Aziz, Norazreen
title Optimization of focusing SAW propagation in piezoelectric medium for microfluidic applications
title_short Optimization of focusing SAW propagation in piezoelectric medium for microfluidic applications
title_full Optimization of focusing SAW propagation in piezoelectric medium for microfluidic applications
title_fullStr Optimization of focusing SAW propagation in piezoelectric medium for microfluidic applications
title_full_unstemmed Optimization of focusing SAW propagation in piezoelectric medium for microfluidic applications
title_sort optimization of focusing saw propagation in piezoelectric medium for microfluidic applications
publishDate 2015
url http://irep.iium.edu.my/45281/1/45281.pdf
http://irep.iium.edu.my/45281/
http://ieeexplore.ieee.org/xpl/articleDetails.jsp?arnumber=7161011&punumber%3D7153073%26filter%3DAND(p_IS_Number%3A7160955)%26pageNumber%3D3
_version_ 1643612758500966400
score 13.160551