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Parylene C as a Multipurpose Material for Electronics and Microfluidics

Poly(p-xylylene) derivatives, widely known as Parylenes, have been considerably adopted by the scientific community for several applications, ranging from simple passive coatings to active device components. Here, we explore the thermal, structural, and electrical properties of Parylene C, and furth...

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Autores principales: Coelho, Beatriz J., Pinto, Joana V., Martins, Jorge, Rovisco, Ana, Barquinha, Pedro, Fortunato, Elvira, Baptista, Pedro V., Martins, Rodrigo, Igreja, Rui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10224276/
https://www.ncbi.nlm.nih.gov/pubmed/37242852
http://dx.doi.org/10.3390/polym15102277
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author Coelho, Beatriz J.
Pinto, Joana V.
Martins, Jorge
Rovisco, Ana
Barquinha, Pedro
Fortunato, Elvira
Baptista, Pedro V.
Martins, Rodrigo
Igreja, Rui
author_facet Coelho, Beatriz J.
Pinto, Joana V.
Martins, Jorge
Rovisco, Ana
Barquinha, Pedro
Fortunato, Elvira
Baptista, Pedro V.
Martins, Rodrigo
Igreja, Rui
author_sort Coelho, Beatriz J.
collection PubMed
description Poly(p-xylylene) derivatives, widely known as Parylenes, have been considerably adopted by the scientific community for several applications, ranging from simple passive coatings to active device components. Here, we explore the thermal, structural, and electrical properties of Parylene C, and further present a variety of electronic devices featuring this polymer: transistors, capacitors, and digital microfluidic (DMF) devices. We evaluate transistors produced with Parylene C as a dielectric, substrate, and encapsulation layer, either semitransparent or fully transparent. Such transistors exhibit steep transfer curves and subthreshold slopes of 0.26 V/dec, negligible gate leak currents, and fair mobilities. Furthermore, we characterize MIM (metal–insulator–metal) structures with Parylene C as a dielectric and demonstrate the functionality of the polymer deposited in single and double layers under temperature and AC signal stimuli, mimicking the DMF stimuli. Applying temperature generally leads to a decrease in the capacitance of the dielectric layer, whereas applying an AC signal leads to an increase in said capacitance for double-layered Parylene C only. By applying the two stimuli, the capacitance seems to suffer from a balanced influence of both the separated stimuli. Lastly, we demonstrate that DMF devices with double-layered Parylene C allow for faster droplet motion and enable long nucleic acid amplification reactions.
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spelling pubmed-102242762023-05-28 Parylene C as a Multipurpose Material for Electronics and Microfluidics Coelho, Beatriz J. Pinto, Joana V. Martins, Jorge Rovisco, Ana Barquinha, Pedro Fortunato, Elvira Baptista, Pedro V. Martins, Rodrigo Igreja, Rui Polymers (Basel) Article Poly(p-xylylene) derivatives, widely known as Parylenes, have been considerably adopted by the scientific community for several applications, ranging from simple passive coatings to active device components. Here, we explore the thermal, structural, and electrical properties of Parylene C, and further present a variety of electronic devices featuring this polymer: transistors, capacitors, and digital microfluidic (DMF) devices. We evaluate transistors produced with Parylene C as a dielectric, substrate, and encapsulation layer, either semitransparent or fully transparent. Such transistors exhibit steep transfer curves and subthreshold slopes of 0.26 V/dec, negligible gate leak currents, and fair mobilities. Furthermore, we characterize MIM (metal–insulator–metal) structures with Parylene C as a dielectric and demonstrate the functionality of the polymer deposited in single and double layers under temperature and AC signal stimuli, mimicking the DMF stimuli. Applying temperature generally leads to a decrease in the capacitance of the dielectric layer, whereas applying an AC signal leads to an increase in said capacitance for double-layered Parylene C only. By applying the two stimuli, the capacitance seems to suffer from a balanced influence of both the separated stimuli. Lastly, we demonstrate that DMF devices with double-layered Parylene C allow for faster droplet motion and enable long nucleic acid amplification reactions. MDPI 2023-05-12 /pmc/articles/PMC10224276/ /pubmed/37242852 http://dx.doi.org/10.3390/polym15102277 Text en © 2023 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
Coelho, Beatriz J.
Pinto, Joana V.
Martins, Jorge
Rovisco, Ana
Barquinha, Pedro
Fortunato, Elvira
Baptista, Pedro V.
Martins, Rodrigo
Igreja, Rui
Parylene C as a Multipurpose Material for Electronics and Microfluidics
title Parylene C as a Multipurpose Material for Electronics and Microfluidics
title_full Parylene C as a Multipurpose Material for Electronics and Microfluidics
title_fullStr Parylene C as a Multipurpose Material for Electronics and Microfluidics
title_full_unstemmed Parylene C as a Multipurpose Material for Electronics and Microfluidics
title_short Parylene C as a Multipurpose Material for Electronics and Microfluidics
title_sort parylene c as a multipurpose material for electronics and microfluidics
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10224276/
https://www.ncbi.nlm.nih.gov/pubmed/37242852
http://dx.doi.org/10.3390/polym15102277
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