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Graphene Inks Printed by Aerosol Jet for Sensing Applications: The Role of Dispersant on the Inks’ Formulation and Performance

This study presents graphene inks produced through the liquid-phase exfoliation of graphene flakes in water using optimized concentrations of dispersants (gelatin, triton X-100, and tween-20). The study explores and compares the effectiveness of the three different dispersants in creating stable and...

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Autores principales: Al Shboul, Ahmad, Ketabi, Mohsen, Skaf, Daniella, Nyayachavadi, Audithya, Lai Fak Yu, Thierry, Rautureau, Tom, Rondeau-Gagné, Simon, Izquierdo, Ricardo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10458541/
https://www.ncbi.nlm.nih.gov/pubmed/37631688
http://dx.doi.org/10.3390/s23167151
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author Al Shboul, Ahmad
Ketabi, Mohsen
Skaf, Daniella
Nyayachavadi, Audithya
Lai Fak Yu, Thierry
Rautureau, Tom
Rondeau-Gagné, Simon
Izquierdo, Ricardo
author_facet Al Shboul, Ahmad
Ketabi, Mohsen
Skaf, Daniella
Nyayachavadi, Audithya
Lai Fak Yu, Thierry
Rautureau, Tom
Rondeau-Gagné, Simon
Izquierdo, Ricardo
author_sort Al Shboul, Ahmad
collection PubMed
description This study presents graphene inks produced through the liquid-phase exfoliation of graphene flakes in water using optimized concentrations of dispersants (gelatin, triton X-100, and tween-20). The study explores and compares the effectiveness of the three different dispersants in creating stable and conductive inks. These inks can be printed onto polyethylene terephthalate (PET) substrates using an aerosol jet printer. The investigation aims to identify the most suitable dispersant to formulate a high-quality graphene ink for potential applications in printed electronics, particularly in developing chemiresistive sensors for IoT applications. Our findings indicate that triton X-100 is the most effective dispersant for formulating graphene ink (GTr), which demonstrated electrical conductivity (4.5 S·cm(−1)), a high nanofiller concentration of graphene flakes (12.2%) with a size smaller than 200 nm (<200 nm), a low dispersant-to-graphene ratio (5%), good quality as measured by Raman spectroscopy (I(D)/I(G) ≈ 0.27), and good wettability (θ ≈ 42°) over PET. The GTr’s ecological benefits, combined with its excellent printability and good conductivity, make it an ideal candidate for manufacturing chemiresistive sensors that can be used for Internet of Things (IoT) healthcare and environmental applications.
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spelling pubmed-104585412023-08-27 Graphene Inks Printed by Aerosol Jet for Sensing Applications: The Role of Dispersant on the Inks’ Formulation and Performance Al Shboul, Ahmad Ketabi, Mohsen Skaf, Daniella Nyayachavadi, Audithya Lai Fak Yu, Thierry Rautureau, Tom Rondeau-Gagné, Simon Izquierdo, Ricardo Sensors (Basel) Article This study presents graphene inks produced through the liquid-phase exfoliation of graphene flakes in water using optimized concentrations of dispersants (gelatin, triton X-100, and tween-20). The study explores and compares the effectiveness of the three different dispersants in creating stable and conductive inks. These inks can be printed onto polyethylene terephthalate (PET) substrates using an aerosol jet printer. The investigation aims to identify the most suitable dispersant to formulate a high-quality graphene ink for potential applications in printed electronics, particularly in developing chemiresistive sensors for IoT applications. Our findings indicate that triton X-100 is the most effective dispersant for formulating graphene ink (GTr), which demonstrated electrical conductivity (4.5 S·cm(−1)), a high nanofiller concentration of graphene flakes (12.2%) with a size smaller than 200 nm (<200 nm), a low dispersant-to-graphene ratio (5%), good quality as measured by Raman spectroscopy (I(D)/I(G) ≈ 0.27), and good wettability (θ ≈ 42°) over PET. The GTr’s ecological benefits, combined with its excellent printability and good conductivity, make it an ideal candidate for manufacturing chemiresistive sensors that can be used for Internet of Things (IoT) healthcare and environmental applications. MDPI 2023-08-13 /pmc/articles/PMC10458541/ /pubmed/37631688 http://dx.doi.org/10.3390/s23167151 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
Al Shboul, Ahmad
Ketabi, Mohsen
Skaf, Daniella
Nyayachavadi, Audithya
Lai Fak Yu, Thierry
Rautureau, Tom
Rondeau-Gagné, Simon
Izquierdo, Ricardo
Graphene Inks Printed by Aerosol Jet for Sensing Applications: The Role of Dispersant on the Inks’ Formulation and Performance
title Graphene Inks Printed by Aerosol Jet for Sensing Applications: The Role of Dispersant on the Inks’ Formulation and Performance
title_full Graphene Inks Printed by Aerosol Jet for Sensing Applications: The Role of Dispersant on the Inks’ Formulation and Performance
title_fullStr Graphene Inks Printed by Aerosol Jet for Sensing Applications: The Role of Dispersant on the Inks’ Formulation and Performance
title_full_unstemmed Graphene Inks Printed by Aerosol Jet for Sensing Applications: The Role of Dispersant on the Inks’ Formulation and Performance
title_short Graphene Inks Printed by Aerosol Jet for Sensing Applications: The Role of Dispersant on the Inks’ Formulation and Performance
title_sort graphene inks printed by aerosol jet for sensing applications: the role of dispersant on the inks’ formulation and performance
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10458541/
https://www.ncbi.nlm.nih.gov/pubmed/37631688
http://dx.doi.org/10.3390/s23167151
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