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Lignin as a High-Value Bioaditive in 3D-DLP Printable Acrylic Resins and Polyaniline Conductive Composite

With increasing environmental awareness, lignin will play a key role in the transition from the traditional materials industry towards sustainability and Industry 4.0, boosting the development of functional eco-friendly composites for future electronic devices. In this work, a detailed study of the...

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Autores principales: Arias-Ferreiro, Goretti, Lasagabáster-Latorre, Aurora, Ares-Pernas, Ana, Ligero, Pablo, García-Garabal, Sandra María, Dopico-García, María Sonia, Abad, María-José
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9572831/
https://www.ncbi.nlm.nih.gov/pubmed/36236112
http://dx.doi.org/10.3390/polym14194164
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author Arias-Ferreiro, Goretti
Lasagabáster-Latorre, Aurora
Ares-Pernas, Ana
Ligero, Pablo
García-Garabal, Sandra María
Dopico-García, María Sonia
Abad, María-José
author_facet Arias-Ferreiro, Goretti
Lasagabáster-Latorre, Aurora
Ares-Pernas, Ana
Ligero, Pablo
García-Garabal, Sandra María
Dopico-García, María Sonia
Abad, María-José
author_sort Arias-Ferreiro, Goretti
collection PubMed
description With increasing environmental awareness, lignin will play a key role in the transition from the traditional materials industry towards sustainability and Industry 4.0, boosting the development of functional eco-friendly composites for future electronic devices. In this work, a detailed study of the effect of unmodified lignin on 3D printed light-curable acrylic composites was performed up to 4 wt.%. Lignin ratios below 3 wt.% could be easily and reproducibly printed on a digital light processing (DLP) printer, maintaining the flexibility and thermal stability of the pristine resin. These low lignin contents lead to 3D printed composites with smoother surfaces, improved hardness (Shore A increase ~5%), and higher wettability (contact angles decrease ~19.5%). Finally, 1 wt.% lignin was added into 3D printed acrylic resins containing 5 wt.% p-toluensulfonic doped polyaniline (pTSA-PANI). The lignin/pTSA-PANI/acrylic composite showed a clear improvement in the dispersion of the conductive filler, reducing the average surface roughness (R(a)) by 61% and increasing the electrical conductivity by an order of magnitude (up to 10(−6) S cm(−1)) compared to lignin free PANI composites. Thus, incorporating organosolv lignin from wood industry wastes as raw material into 3D printed photocurable resins represents a simple, low-cost potential application for the design of novel high-valued, bio-based products.
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spelling pubmed-95728312022-10-17 Lignin as a High-Value Bioaditive in 3D-DLP Printable Acrylic Resins and Polyaniline Conductive Composite Arias-Ferreiro, Goretti Lasagabáster-Latorre, Aurora Ares-Pernas, Ana Ligero, Pablo García-Garabal, Sandra María Dopico-García, María Sonia Abad, María-José Polymers (Basel) Article With increasing environmental awareness, lignin will play a key role in the transition from the traditional materials industry towards sustainability and Industry 4.0, boosting the development of functional eco-friendly composites for future electronic devices. In this work, a detailed study of the effect of unmodified lignin on 3D printed light-curable acrylic composites was performed up to 4 wt.%. Lignin ratios below 3 wt.% could be easily and reproducibly printed on a digital light processing (DLP) printer, maintaining the flexibility and thermal stability of the pristine resin. These low lignin contents lead to 3D printed composites with smoother surfaces, improved hardness (Shore A increase ~5%), and higher wettability (contact angles decrease ~19.5%). Finally, 1 wt.% lignin was added into 3D printed acrylic resins containing 5 wt.% p-toluensulfonic doped polyaniline (pTSA-PANI). The lignin/pTSA-PANI/acrylic composite showed a clear improvement in the dispersion of the conductive filler, reducing the average surface roughness (R(a)) by 61% and increasing the electrical conductivity by an order of magnitude (up to 10(−6) S cm(−1)) compared to lignin free PANI composites. Thus, incorporating organosolv lignin from wood industry wastes as raw material into 3D printed photocurable resins represents a simple, low-cost potential application for the design of novel high-valued, bio-based products. MDPI 2022-10-04 /pmc/articles/PMC9572831/ /pubmed/36236112 http://dx.doi.org/10.3390/polym14194164 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
Arias-Ferreiro, Goretti
Lasagabáster-Latorre, Aurora
Ares-Pernas, Ana
Ligero, Pablo
García-Garabal, Sandra María
Dopico-García, María Sonia
Abad, María-José
Lignin as a High-Value Bioaditive in 3D-DLP Printable Acrylic Resins and Polyaniline Conductive Composite
title Lignin as a High-Value Bioaditive in 3D-DLP Printable Acrylic Resins and Polyaniline Conductive Composite
title_full Lignin as a High-Value Bioaditive in 3D-DLP Printable Acrylic Resins and Polyaniline Conductive Composite
title_fullStr Lignin as a High-Value Bioaditive in 3D-DLP Printable Acrylic Resins and Polyaniline Conductive Composite
title_full_unstemmed Lignin as a High-Value Bioaditive in 3D-DLP Printable Acrylic Resins and Polyaniline Conductive Composite
title_short Lignin as a High-Value Bioaditive in 3D-DLP Printable Acrylic Resins and Polyaniline Conductive Composite
title_sort lignin as a high-value bioaditive in 3d-dlp printable acrylic resins and polyaniline conductive composite
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9572831/
https://www.ncbi.nlm.nih.gov/pubmed/36236112
http://dx.doi.org/10.3390/polym14194164
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