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Application of Micro/Nanoporous Fluoropolymers with Reduced Bioadhesion in Digital Microfluidics

Digital microfluidics (DMF) is a versatile platform for conducting a variety of biological and chemical assays. The most commonly used set-up for the actuation of microliter droplets is electrowetting on dielectric (EWOD), where the liquid is moved by an electrostatic force on a dielectric layer. Su...

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Autores principales: Goralczyk, Andreas, Bhagwat, Sagar, Mayoussi, Fadoua, Nekoonam, Niloofar, Sachsenheimer, Kai, Hou, Peilong, Kotz-Helmer, Frederik, Helmer, Dorothea, Rapp, Bastian E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9268009/
https://www.ncbi.nlm.nih.gov/pubmed/35808037
http://dx.doi.org/10.3390/nano12132201
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author Goralczyk, Andreas
Bhagwat, Sagar
Mayoussi, Fadoua
Nekoonam, Niloofar
Sachsenheimer, Kai
Hou, Peilong
Kotz-Helmer, Frederik
Helmer, Dorothea
Rapp, Bastian E.
author_facet Goralczyk, Andreas
Bhagwat, Sagar
Mayoussi, Fadoua
Nekoonam, Niloofar
Sachsenheimer, Kai
Hou, Peilong
Kotz-Helmer, Frederik
Helmer, Dorothea
Rapp, Bastian E.
author_sort Goralczyk, Andreas
collection PubMed
description Digital microfluidics (DMF) is a versatile platform for conducting a variety of biological and chemical assays. The most commonly used set-up for the actuation of microliter droplets is electrowetting on dielectric (EWOD), where the liquid is moved by an electrostatic force on a dielectric layer. Superhydrophobic materials are promising materials for dielectric layers, especially since the minimum contact between droplet and surface is key for low adhesion of biomolecules, as it causes droplet pinning and cross contamination. However, superhydrophobic surfaces show limitations, such as full wetting transition between Cassie and Wenzel under applied voltage, expensive and complex fabrication and difficult integration into already existing devices. Here we present Fluoropor, a superhydrophobic fluorinated polymer foam with pores on the micro/nanoscale as a dielectric layer in DMF. Fluoropor shows stable wetting properties with no significant changes in the wetting behavior, or full wetting transition, until potentials of 400 V. Furthermore, Fluoropor shows low attachment of biomolecules to the surface upon droplet movement. Due to its simple fabrication process, its resistance to adhesion of biomolecules and the fact it is capable of being integrated and exchanged as thin films into commercial DMF devices, Fluoropor is a promising material for wide application in DMF.
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spelling pubmed-92680092022-07-09 Application of Micro/Nanoporous Fluoropolymers with Reduced Bioadhesion in Digital Microfluidics Goralczyk, Andreas Bhagwat, Sagar Mayoussi, Fadoua Nekoonam, Niloofar Sachsenheimer, Kai Hou, Peilong Kotz-Helmer, Frederik Helmer, Dorothea Rapp, Bastian E. Nanomaterials (Basel) Article Digital microfluidics (DMF) is a versatile platform for conducting a variety of biological and chemical assays. The most commonly used set-up for the actuation of microliter droplets is electrowetting on dielectric (EWOD), where the liquid is moved by an electrostatic force on a dielectric layer. Superhydrophobic materials are promising materials for dielectric layers, especially since the minimum contact between droplet and surface is key for low adhesion of biomolecules, as it causes droplet pinning and cross contamination. However, superhydrophobic surfaces show limitations, such as full wetting transition between Cassie and Wenzel under applied voltage, expensive and complex fabrication and difficult integration into already existing devices. Here we present Fluoropor, a superhydrophobic fluorinated polymer foam with pores on the micro/nanoscale as a dielectric layer in DMF. Fluoropor shows stable wetting properties with no significant changes in the wetting behavior, or full wetting transition, until potentials of 400 V. Furthermore, Fluoropor shows low attachment of biomolecules to the surface upon droplet movement. Due to its simple fabrication process, its resistance to adhesion of biomolecules and the fact it is capable of being integrated and exchanged as thin films into commercial DMF devices, Fluoropor is a promising material for wide application in DMF. MDPI 2022-06-27 /pmc/articles/PMC9268009/ /pubmed/35808037 http://dx.doi.org/10.3390/nano12132201 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
Goralczyk, Andreas
Bhagwat, Sagar
Mayoussi, Fadoua
Nekoonam, Niloofar
Sachsenheimer, Kai
Hou, Peilong
Kotz-Helmer, Frederik
Helmer, Dorothea
Rapp, Bastian E.
Application of Micro/Nanoporous Fluoropolymers with Reduced Bioadhesion in Digital Microfluidics
title Application of Micro/Nanoporous Fluoropolymers with Reduced Bioadhesion in Digital Microfluidics
title_full Application of Micro/Nanoporous Fluoropolymers with Reduced Bioadhesion in Digital Microfluidics
title_fullStr Application of Micro/Nanoporous Fluoropolymers with Reduced Bioadhesion in Digital Microfluidics
title_full_unstemmed Application of Micro/Nanoporous Fluoropolymers with Reduced Bioadhesion in Digital Microfluidics
title_short Application of Micro/Nanoporous Fluoropolymers with Reduced Bioadhesion in Digital Microfluidics
title_sort application of micro/nanoporous fluoropolymers with reduced bioadhesion in digital microfluidics
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9268009/
https://www.ncbi.nlm.nih.gov/pubmed/35808037
http://dx.doi.org/10.3390/nano12132201
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