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3D Printing Manufacturing of Polydimethyl-Siloxane/Zinc Oxide Micro-Optofluidic Device for Two-Phase Flows Control

Tailored ZnO surface functionalization was performed inside a polydimethyl-siloxane (PDMS) microchannel of a micro-optofluidic device (mofd) to modulate its surface hydrophobicity to develop a method for fine tuning the fluid dynamics inside a microchannel. The wetting behavior of the surface is of...

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Autores principales: Stella, Giovanna, Barcellona, Matteo, Saitta, Lorena, Tosto, Claudio, Cicala, Gianluca, Gulino, Antonino, Bucolo, Maide, Fragalà, Maria Elena
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9146388/
https://www.ncbi.nlm.nih.gov/pubmed/35631994
http://dx.doi.org/10.3390/polym14102113
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author Stella, Giovanna
Barcellona, Matteo
Saitta, Lorena
Tosto, Claudio
Cicala, Gianluca
Gulino, Antonino
Bucolo, Maide
Fragalà, Maria Elena
author_facet Stella, Giovanna
Barcellona, Matteo
Saitta, Lorena
Tosto, Claudio
Cicala, Gianluca
Gulino, Antonino
Bucolo, Maide
Fragalà, Maria Elena
author_sort Stella, Giovanna
collection PubMed
description Tailored ZnO surface functionalization was performed inside a polydimethyl-siloxane (PDMS) microchannel of a micro-optofluidic device (mofd) to modulate its surface hydrophobicity to develop a method for fine tuning the fluid dynamics inside a microchannel. The wetting behavior of the surface is of particular importance if two different phases are used for system operations. Therefore, the fluid dynamic behavior of two immiscible fluids, (i) air–water and (ii) air–glycerol/water in PDMS mofds and ZnO-PDMS mofds was investigated by using different experimental conditions. The results showed that air–glycerol/water fluid was always faster than air–water flow, despite the microchannel treatment: however, in the presence of ZnO microstructures, the velocity of the air–glycerol/water fluid decreased compared with that observed for the air–water fluid. This behavior was associated with the strong ability of glycerol to create an H-bond network with the exposed surface of the zinc oxide microparticles. The results presented in this paper allow an understanding of the role of ZnO functionalization, which allows control of the microfluidic two-phase flow using different liquids that undergo different chemical interactions with the surface chemical terminations of the microchannel. This chemical approach is proposed as a control strategy that is easily adaptable for any embedded micro-device.
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spelling pubmed-91463882022-05-29 3D Printing Manufacturing of Polydimethyl-Siloxane/Zinc Oxide Micro-Optofluidic Device for Two-Phase Flows Control Stella, Giovanna Barcellona, Matteo Saitta, Lorena Tosto, Claudio Cicala, Gianluca Gulino, Antonino Bucolo, Maide Fragalà, Maria Elena Polymers (Basel) Article Tailored ZnO surface functionalization was performed inside a polydimethyl-siloxane (PDMS) microchannel of a micro-optofluidic device (mofd) to modulate its surface hydrophobicity to develop a method for fine tuning the fluid dynamics inside a microchannel. The wetting behavior of the surface is of particular importance if two different phases are used for system operations. Therefore, the fluid dynamic behavior of two immiscible fluids, (i) air–water and (ii) air–glycerol/water in PDMS mofds and ZnO-PDMS mofds was investigated by using different experimental conditions. The results showed that air–glycerol/water fluid was always faster than air–water flow, despite the microchannel treatment: however, in the presence of ZnO microstructures, the velocity of the air–glycerol/water fluid decreased compared with that observed for the air–water fluid. This behavior was associated with the strong ability of glycerol to create an H-bond network with the exposed surface of the zinc oxide microparticles. The results presented in this paper allow an understanding of the role of ZnO functionalization, which allows control of the microfluidic two-phase flow using different liquids that undergo different chemical interactions with the surface chemical terminations of the microchannel. This chemical approach is proposed as a control strategy that is easily adaptable for any embedded micro-device. MDPI 2022-05-22 /pmc/articles/PMC9146388/ /pubmed/35631994 http://dx.doi.org/10.3390/polym14102113 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Stella, Giovanna
Barcellona, Matteo
Saitta, Lorena
Tosto, Claudio
Cicala, Gianluca
Gulino, Antonino
Bucolo, Maide
Fragalà, Maria Elena
3D Printing Manufacturing of Polydimethyl-Siloxane/Zinc Oxide Micro-Optofluidic Device for Two-Phase Flows Control
title 3D Printing Manufacturing of Polydimethyl-Siloxane/Zinc Oxide Micro-Optofluidic Device for Two-Phase Flows Control
title_full 3D Printing Manufacturing of Polydimethyl-Siloxane/Zinc Oxide Micro-Optofluidic Device for Two-Phase Flows Control
title_fullStr 3D Printing Manufacturing of Polydimethyl-Siloxane/Zinc Oxide Micro-Optofluidic Device for Two-Phase Flows Control
title_full_unstemmed 3D Printing Manufacturing of Polydimethyl-Siloxane/Zinc Oxide Micro-Optofluidic Device for Two-Phase Flows Control
title_short 3D Printing Manufacturing of Polydimethyl-Siloxane/Zinc Oxide Micro-Optofluidic Device for Two-Phase Flows Control
title_sort 3d printing manufacturing of polydimethyl-siloxane/zinc oxide micro-optofluidic device for two-phase flows control
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9146388/
https://www.ncbi.nlm.nih.gov/pubmed/35631994
http://dx.doi.org/10.3390/polym14102113
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