Active PZT Composite Microfluidic Channel for Bioparticle Manipulation

The concept of active microchannel for precise manipulation of particles in biomedicine is reported in this paper. A novel vibration-assisted thermal imprint method is proposed for effective formation of a microchannel network in the nanocomposite piezo polymer layer. In this method, bulk acoustic w...

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Main Authors: Tomas Janusas, Kestutis Pilkauskas, Giedrius Janusas, Arvydas Palevicius
Format: Article
Language:English
Published: MDPI AG 2019-04-01
Series:Sensors
Subjects:
Online Access:https://www.mdpi.com/1424-8220/19/9/2020
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author Tomas Janusas
Kestutis Pilkauskas
Giedrius Janusas
Arvydas Palevicius
author_facet Tomas Janusas
Kestutis Pilkauskas
Giedrius Janusas
Arvydas Palevicius
author_sort Tomas Janusas
collection DOAJ
description The concept of active microchannel for precise manipulation of particles in biomedicine is reported in this paper. A novel vibration-assisted thermal imprint method is proposed for effective formation of a microchannel network in the nanocomposite piezo polymer layer. In this method, bulk acoustic waves of different wavelengths excited in an imprinted microstructure enable it to function in trapping&#8722;patterning, valve, or free particle passing modes. Acoustic waves are excited using a special pattern of electrodes formed on its top surface and a single electric ground electrode formed on the bottom surface. To develop the microchannel, we first started with lead zirconate titanate (PZT) nanopowder [Pb (Zr<sub>x</sub>, Ti<sub>1&#8722;x</sub>) O<sub>3</sub>] synthesis. The PZT was further mixed with three different binding materials&#8212;polyvinyl butyral (PVB), poly(methyl methacrylate) (PMMA), and polystyrene (PS)&#8212;in benzyl alcohol to prepare a screen-printing paste. Then, using conventional screen printing techniques, three types of PZT coatings on copper foil substrates were obtained. To improve the voltage characteristics, the coatings were polarized. Their structural and chemical composition was analyzed using scanning electron microscope (SEM), while the mechanical and electrical characteristics were determined using the COMSOL Multiphysics model with experimentally obtained parameters of periodic response of the layered copper foil structure. The hydrophobic properties of the PZT composite were analyzed by measuring the contact angle between the distilled water drop and the three different polymer composites: PZT with PVB, PZT with PMMA, and PZT with PS. Finally, the behavior of the microchannel formed in the nanocomposite piezo polymer was simulated by applying electrical excitation signal on the pattern of electrodes and then analyzed experimentally using holographic interferometry. Wave-shaped vibration forms of the microchannel were obtained, thereby enabling particle manipulation.
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spelling doaj.art-cfdc00d45b894f3dacb5758ae5cad8762022-12-22T02:06:54ZengMDPI AGSensors1424-82202019-04-01199202010.3390/s19092020s19092020Active PZT Composite Microfluidic Channel for Bioparticle ManipulationTomas Janusas0Kestutis Pilkauskas1Giedrius Janusas2Arvydas Palevicius3Faculty of Mechanical Engineering and Design, Kaunas University of Technology, Studentu str. 56, Kaunas LT-51424, LithuaniaFaculty of Mechanical Engineering and Design, Kaunas University of Technology, Studentu str. 56, Kaunas LT-51424, LithuaniaFaculty of Mechanical Engineering and Design, Kaunas University of Technology, Studentu str. 56, Kaunas LT-51424, LithuaniaFaculty of Mechanical Engineering and Design, Kaunas University of Technology, Studentu str. 56, Kaunas LT-51424, LithuaniaThe concept of active microchannel for precise manipulation of particles in biomedicine is reported in this paper. A novel vibration-assisted thermal imprint method is proposed for effective formation of a microchannel network in the nanocomposite piezo polymer layer. In this method, bulk acoustic waves of different wavelengths excited in an imprinted microstructure enable it to function in trapping&#8722;patterning, valve, or free particle passing modes. Acoustic waves are excited using a special pattern of electrodes formed on its top surface and a single electric ground electrode formed on the bottom surface. To develop the microchannel, we first started with lead zirconate titanate (PZT) nanopowder [Pb (Zr<sub>x</sub>, Ti<sub>1&#8722;x</sub>) O<sub>3</sub>] synthesis. The PZT was further mixed with three different binding materials&#8212;polyvinyl butyral (PVB), poly(methyl methacrylate) (PMMA), and polystyrene (PS)&#8212;in benzyl alcohol to prepare a screen-printing paste. Then, using conventional screen printing techniques, three types of PZT coatings on copper foil substrates were obtained. To improve the voltage characteristics, the coatings were polarized. Their structural and chemical composition was analyzed using scanning electron microscope (SEM), while the mechanical and electrical characteristics were determined using the COMSOL Multiphysics model with experimentally obtained parameters of periodic response of the layered copper foil structure. The hydrophobic properties of the PZT composite were analyzed by measuring the contact angle between the distilled water drop and the three different polymer composites: PZT with PVB, PZT with PMMA, and PZT with PS. Finally, the behavior of the microchannel formed in the nanocomposite piezo polymer was simulated by applying electrical excitation signal on the pattern of electrodes and then analyzed experimentally using holographic interferometry. Wave-shaped vibration forms of the microchannel were obtained, thereby enabling particle manipulation.https://www.mdpi.com/1424-8220/19/9/2020thermal replicationPZT compositebioparticle manipulation
spellingShingle Tomas Janusas
Kestutis Pilkauskas
Giedrius Janusas
Arvydas Palevicius
Active PZT Composite Microfluidic Channel for Bioparticle Manipulation
Sensors
thermal replication
PZT composite
bioparticle manipulation
title Active PZT Composite Microfluidic Channel for Bioparticle Manipulation
title_full Active PZT Composite Microfluidic Channel for Bioparticle Manipulation
title_fullStr Active PZT Composite Microfluidic Channel for Bioparticle Manipulation
title_full_unstemmed Active PZT Composite Microfluidic Channel for Bioparticle Manipulation
title_short Active PZT Composite Microfluidic Channel for Bioparticle Manipulation
title_sort active pzt composite microfluidic channel for bioparticle manipulation
topic thermal replication
PZT composite
bioparticle manipulation
url https://www.mdpi.com/1424-8220/19/9/2020
work_keys_str_mv AT tomasjanusas activepztcompositemicrofluidicchannelforbioparticlemanipulation
AT kestutispilkauskas activepztcompositemicrofluidicchannelforbioparticlemanipulation
AT giedriusjanusas activepztcompositemicrofluidicchannelforbioparticlemanipulation
AT arvydaspalevicius activepztcompositemicrofluidicchannelforbioparticlemanipulation