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Photo-Curing Kinetics of 3D-Printing Photo-Inks Based on Urethane-Acrylates

In this study, photo-curing kinetics for urethane-acrylate-based photo-inks for 3D printing were evaluated using a photo-differential scanning calorimetry analysis. Initially, the photopolymerization kinetics of di- and monofunctional monomers were separately studied at different temperatures (5–85...

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Autores principales: Bakhshi, Hadi, Kuang, Guanxing, Wieland, Franziska, Meyer, Wolfdietrich
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9331891/
https://www.ncbi.nlm.nih.gov/pubmed/35893938
http://dx.doi.org/10.3390/polym14152974
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author Bakhshi, Hadi
Kuang, Guanxing
Wieland, Franziska
Meyer, Wolfdietrich
author_facet Bakhshi, Hadi
Kuang, Guanxing
Wieland, Franziska
Meyer, Wolfdietrich
author_sort Bakhshi, Hadi
collection PubMed
description In this study, photo-curing kinetics for urethane-acrylate-based photo-inks for 3D printing were evaluated using a photo-differential scanning calorimetry analysis. Initially, the photopolymerization kinetics of di- and monofunctional monomers were separately studied at different temperatures (5–85 °C). Later, the photo-curing kinetics and mechanical properties of photo-inks based on different monomer mixtures (40/60–20/80) were evaluated. The results showed that urethane-dimethacrylate (UrDMA) and urethane-acrylate (UrA) had no light absorption in the region of 280–700 nm, making them a proper crosslinker and a reactive diluent, respectively, for the formulation of 3D-printing photo-inks. The kinetics investigations showed a temperature dependency for the photo-curing of UrDMA, where a higher photopolymerization rate (R(p,max): from 5.25 × 10(−2) to 8.42 × 10(−2) 1/s) and double-bound conversion (DBC(total): from 63.8% to 92.2%) were observed at elevated temperatures (5–85 °C), while the photo-curing of UrA was independent of the temperature (25–85 °C). Enhancing the UrA content from 60% to 80% in the UrDMA/UrA mixtures initially increased and later decreased the photopolymerization rate and conversion, where the mixtures of 30/70 and 25/75 presented the highest values. Meanwhile, increasing the UrA content led to lower glass transition temperatures (T(g)) and mechanical strength for the photo-cured samples, where the mixture of 30/70 presented the highest maximum elongation (ε(max): 73%).
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spelling pubmed-93318912022-07-29 Photo-Curing Kinetics of 3D-Printing Photo-Inks Based on Urethane-Acrylates Bakhshi, Hadi Kuang, Guanxing Wieland, Franziska Meyer, Wolfdietrich Polymers (Basel) Article In this study, photo-curing kinetics for urethane-acrylate-based photo-inks for 3D printing were evaluated using a photo-differential scanning calorimetry analysis. Initially, the photopolymerization kinetics of di- and monofunctional monomers were separately studied at different temperatures (5–85 °C). Later, the photo-curing kinetics and mechanical properties of photo-inks based on different monomer mixtures (40/60–20/80) were evaluated. The results showed that urethane-dimethacrylate (UrDMA) and urethane-acrylate (UrA) had no light absorption in the region of 280–700 nm, making them a proper crosslinker and a reactive diluent, respectively, for the formulation of 3D-printing photo-inks. The kinetics investigations showed a temperature dependency for the photo-curing of UrDMA, where a higher photopolymerization rate (R(p,max): from 5.25 × 10(−2) to 8.42 × 10(−2) 1/s) and double-bound conversion (DBC(total): from 63.8% to 92.2%) were observed at elevated temperatures (5–85 °C), while the photo-curing of UrA was independent of the temperature (25–85 °C). Enhancing the UrA content from 60% to 80% in the UrDMA/UrA mixtures initially increased and later decreased the photopolymerization rate and conversion, where the mixtures of 30/70 and 25/75 presented the highest values. Meanwhile, increasing the UrA content led to lower glass transition temperatures (T(g)) and mechanical strength for the photo-cured samples, where the mixture of 30/70 presented the highest maximum elongation (ε(max): 73%). MDPI 2022-07-22 /pmc/articles/PMC9331891/ /pubmed/35893938 http://dx.doi.org/10.3390/polym14152974 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
Bakhshi, Hadi
Kuang, Guanxing
Wieland, Franziska
Meyer, Wolfdietrich
Photo-Curing Kinetics of 3D-Printing Photo-Inks Based on Urethane-Acrylates
title Photo-Curing Kinetics of 3D-Printing Photo-Inks Based on Urethane-Acrylates
title_full Photo-Curing Kinetics of 3D-Printing Photo-Inks Based on Urethane-Acrylates
title_fullStr Photo-Curing Kinetics of 3D-Printing Photo-Inks Based on Urethane-Acrylates
title_full_unstemmed Photo-Curing Kinetics of 3D-Printing Photo-Inks Based on Urethane-Acrylates
title_short Photo-Curing Kinetics of 3D-Printing Photo-Inks Based on Urethane-Acrylates
title_sort photo-curing kinetics of 3d-printing photo-inks based on urethane-acrylates
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9331891/
https://www.ncbi.nlm.nih.gov/pubmed/35893938
http://dx.doi.org/10.3390/polym14152974
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