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Microstructured Magnetoactive Elastomers for Switchable Wettability

We demonstrate the control of wettability of non-structured and microstructured magnetoactive elastomers (MAEs) by magnetic field. The synthesized composite materials have a concentration of carbonyl iron particles of 75 wt.% (≈27 vol.%) and three different stiffnesses of the elastomer matrix. A new...

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Autores principales: Kriegl, Raphael, Kravanja, Gaia, Hribar, Luka, Čoga, Lucija, Drevenšek-Olenik, Irena, Jezeršek, Matija, Kalin, Mitjan, Shamonin, Mikhail
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9503804/
https://www.ncbi.nlm.nih.gov/pubmed/36146027
http://dx.doi.org/10.3390/polym14183883
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author Kriegl, Raphael
Kravanja, Gaia
Hribar, Luka
Čoga, Lucija
Drevenšek-Olenik, Irena
Jezeršek, Matija
Kalin, Mitjan
Shamonin, Mikhail
author_facet Kriegl, Raphael
Kravanja, Gaia
Hribar, Luka
Čoga, Lucija
Drevenšek-Olenik, Irena
Jezeršek, Matija
Kalin, Mitjan
Shamonin, Mikhail
author_sort Kriegl, Raphael
collection PubMed
description We demonstrate the control of wettability of non-structured and microstructured magnetoactive elastomers (MAEs) by magnetic field. The synthesized composite materials have a concentration of carbonyl iron particles of 75 wt.% (≈27 vol.%) and three different stiffnesses of the elastomer matrix. A new method of fabrication of MAE coatings on plastic substrates is presented, which allows one to enhance the response of the apparent contact angle to the magnetic field by exposing the particle-enriched side of MAEs to water. A magnetic field is not applied during crosslinking. The highest variation of the contact angle from (113 ± 1)° in zero field up to (156 ± 2)° at about 400 mT is achieved in the MAE sample with the softest matrix. Several lamellar and pillared MAE structures are fabricated by laser micromachining. The lateral dimension of surface structures is about 50 µm and the depth varies between 3 µm and 60 µm. A systematic investigation of the effects of parameters of laser processing (laser power and the number of passages of the laser beam) on the wetting behavior of these structures in the absence and presence of a magnetic field is performed. In particular, strong anisotropy of the wetting behavior of lamellar structures is observed. The results are qualitatively discussed in the framework of the Wenzel and Cassie–Baxter models. Finally, directions of further research on magnetically controlled wettability of microstructured MAE surfaces are outlined. The obtained results may be useful for the development of magnetically controlled smart surfaces for droplet-based microfluidics.
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spelling pubmed-95038042022-09-24 Microstructured Magnetoactive Elastomers for Switchable Wettability Kriegl, Raphael Kravanja, Gaia Hribar, Luka Čoga, Lucija Drevenšek-Olenik, Irena Jezeršek, Matija Kalin, Mitjan Shamonin, Mikhail Polymers (Basel) Article We demonstrate the control of wettability of non-structured and microstructured magnetoactive elastomers (MAEs) by magnetic field. The synthesized composite materials have a concentration of carbonyl iron particles of 75 wt.% (≈27 vol.%) and three different stiffnesses of the elastomer matrix. A new method of fabrication of MAE coatings on plastic substrates is presented, which allows one to enhance the response of the apparent contact angle to the magnetic field by exposing the particle-enriched side of MAEs to water. A magnetic field is not applied during crosslinking. The highest variation of the contact angle from (113 ± 1)° in zero field up to (156 ± 2)° at about 400 mT is achieved in the MAE sample with the softest matrix. Several lamellar and pillared MAE structures are fabricated by laser micromachining. The lateral dimension of surface structures is about 50 µm and the depth varies between 3 µm and 60 µm. A systematic investigation of the effects of parameters of laser processing (laser power and the number of passages of the laser beam) on the wetting behavior of these structures in the absence and presence of a magnetic field is performed. In particular, strong anisotropy of the wetting behavior of lamellar structures is observed. The results are qualitatively discussed in the framework of the Wenzel and Cassie–Baxter models. Finally, directions of further research on magnetically controlled wettability of microstructured MAE surfaces are outlined. The obtained results may be useful for the development of magnetically controlled smart surfaces for droplet-based microfluidics. MDPI 2022-09-17 /pmc/articles/PMC9503804/ /pubmed/36146027 http://dx.doi.org/10.3390/polym14183883 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
Kriegl, Raphael
Kravanja, Gaia
Hribar, Luka
Čoga, Lucija
Drevenšek-Olenik, Irena
Jezeršek, Matija
Kalin, Mitjan
Shamonin, Mikhail
Microstructured Magnetoactive Elastomers for Switchable Wettability
title Microstructured Magnetoactive Elastomers for Switchable Wettability
title_full Microstructured Magnetoactive Elastomers for Switchable Wettability
title_fullStr Microstructured Magnetoactive Elastomers for Switchable Wettability
title_full_unstemmed Microstructured Magnetoactive Elastomers for Switchable Wettability
title_short Microstructured Magnetoactive Elastomers for Switchable Wettability
title_sort microstructured magnetoactive elastomers for switchable wettability
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9503804/
https://www.ncbi.nlm.nih.gov/pubmed/36146027
http://dx.doi.org/10.3390/polym14183883
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