Cellulose and Graphene Based Polyurethane Nanocomposites for FDM 3D Printing: Filament Properties and Printability

3D printing has exponentially grown in popularity due to the personalization of each printed part it offers, making it extremely beneficial for the very demanding biomedical industry. This technique has been extensively developed and optimized and the advances that now reside in the development of n...

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Main Authors: Izaskun Larraza, Julen Vadillo, Tamara Calvo-Correas, Alvaro Tejado, Sheila Olza, Cristina Peña-Rodríguez, Aitor Arbelaiz, Arantxa Eceiza
Format: Article
Language:English
Published: MDPI AG 2021-03-01
Series:Polymers
Subjects:
FDM
Online Access:https://www.mdpi.com/2073-4360/13/5/839
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spelling doaj-05277ffd321743ec9bd122998074785d2021-03-10T00:06:03ZengMDPI AGPolymers2073-43602021-03-011383983910.3390/polym13050839Cellulose and Graphene Based Polyurethane Nanocomposites for FDM 3D Printing: Filament Properties and PrintabilityIzaskun Larraza0Julen Vadillo1Tamara Calvo-Correas2Alvaro Tejado3Sheila Olza4Cristina Peña-Rodríguez5Aitor Arbelaiz6Arantxa Eceiza7Materials + Technologies’ Research Group (GMT), Department of Chemical and Environmental Engineering, Faculty of Engineering of Gipuzkoa, University of the Basque Country, Plaza Europa 1, 20018 Donostia-San Sebastian, SpainMaterials + Technologies’ Research Group (GMT), Department of Chemical and Environmental Engineering, Faculty of Engineering of Gipuzkoa, University of the Basque Country, Plaza Europa 1, 20018 Donostia-San Sebastian, SpainMaterials + Technologies’ Research Group (GMT), Department of Chemical and Environmental Engineering, Faculty of Engineering of Gipuzkoa, University of the Basque Country, Plaza Europa 1, 20018 Donostia-San Sebastian, SpainTECNALIA, Basque Research and Technology Alliance (BRTA), Area Anardi 5, 20730 Azpeitia, SpainIPREM, UMR 5254, E2S UPPA, CNRS, Université de Pau et des Pays de l’Adour, Hélioparc 2, Avenue du Président Pierre Angot, 64000 Pau, FranceMaterials + Technologies’ Research Group (GMT), Department of Chemical and Environmental Engineering, Faculty of Engineering of Gipuzkoa, University of the Basque Country, Plaza Europa 1, 20018 Donostia-San Sebastian, SpainMaterials + Technologies’ Research Group (GMT), Department of Chemical and Environmental Engineering, Faculty of Engineering of Gipuzkoa, University of the Basque Country, Plaza Europa 1, 20018 Donostia-San Sebastian, SpainMaterials + Technologies’ Research Group (GMT), Department of Chemical and Environmental Engineering, Faculty of Engineering of Gipuzkoa, University of the Basque Country, Plaza Europa 1, 20018 Donostia-San Sebastian, Spain3D printing has exponentially grown in popularity due to the personalization of each printed part it offers, making it extremely beneficial for the very demanding biomedical industry. This technique has been extensively developed and optimized and the advances that now reside in the development of new materials suitable for 3D printing, which may open the door to new applications. Fused deposition modeling (FDM) is the most commonly used 3D printing technique. However, filaments suitable for FDM must meet certain criteria for a successful printing process and thus the optimization of their properties in often necessary. The aim of this work was to prepare a flexible and printable polyurethane filament parting from a biocompatible waterborne polyurethane, which shows potential for biomedical applications. In order to improve filament properties and printability, cellulose nanofibers and graphene were employed to prepare polyurethane based nanocomposites. Prepared nanocomposite filaments showed altered properties which directly impacted their printability. Graphene containing nanocomposites presented sound enough thermal and mechanical properties for a good printing process. Moreover, these filaments were employed in FDM to obtained 3D printed parts, which showed good shape fidelity. Properties exhibited by polyurethane and graphene filaments show potential to be used in biomedical applications.https://www.mdpi.com/2073-4360/13/5/8393D printingFDMwaterborne polyurethane-urea nanocompositesnanocomposite filaments
collection DOAJ
language English
format Article
sources DOAJ
author Izaskun Larraza
Julen Vadillo
Tamara Calvo-Correas
Alvaro Tejado
Sheila Olza
Cristina Peña-Rodríguez
Aitor Arbelaiz
Arantxa Eceiza
spellingShingle Izaskun Larraza
Julen Vadillo
Tamara Calvo-Correas
Alvaro Tejado
Sheila Olza
Cristina Peña-Rodríguez
Aitor Arbelaiz
Arantxa Eceiza
Cellulose and Graphene Based Polyurethane Nanocomposites for FDM 3D Printing: Filament Properties and Printability
Polymers
3D printing
FDM
waterborne polyurethane-urea nanocomposites
nanocomposite filaments
author_facet Izaskun Larraza
Julen Vadillo
Tamara Calvo-Correas
Alvaro Tejado
Sheila Olza
Cristina Peña-Rodríguez
Aitor Arbelaiz
Arantxa Eceiza
author_sort Izaskun Larraza
title Cellulose and Graphene Based Polyurethane Nanocomposites for FDM 3D Printing: Filament Properties and Printability
title_short Cellulose and Graphene Based Polyurethane Nanocomposites for FDM 3D Printing: Filament Properties and Printability
title_full Cellulose and Graphene Based Polyurethane Nanocomposites for FDM 3D Printing: Filament Properties and Printability
title_fullStr Cellulose and Graphene Based Polyurethane Nanocomposites for FDM 3D Printing: Filament Properties and Printability
title_full_unstemmed Cellulose and Graphene Based Polyurethane Nanocomposites for FDM 3D Printing: Filament Properties and Printability
title_sort cellulose and graphene based polyurethane nanocomposites for fdm 3d printing: filament properties and printability
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2021-03-01
description 3D printing has exponentially grown in popularity due to the personalization of each printed part it offers, making it extremely beneficial for the very demanding biomedical industry. This technique has been extensively developed and optimized and the advances that now reside in the development of new materials suitable for 3D printing, which may open the door to new applications. Fused deposition modeling (FDM) is the most commonly used 3D printing technique. However, filaments suitable for FDM must meet certain criteria for a successful printing process and thus the optimization of their properties in often necessary. The aim of this work was to prepare a flexible and printable polyurethane filament parting from a biocompatible waterborne polyurethane, which shows potential for biomedical applications. In order to improve filament properties and printability, cellulose nanofibers and graphene were employed to prepare polyurethane based nanocomposites. Prepared nanocomposite filaments showed altered properties which directly impacted their printability. Graphene containing nanocomposites presented sound enough thermal and mechanical properties for a good printing process. Moreover, these filaments were employed in FDM to obtained 3D printed parts, which showed good shape fidelity. Properties exhibited by polyurethane and graphene filaments show potential to be used in biomedical applications.
topic 3D printing
FDM
waterborne polyurethane-urea nanocomposites
nanocomposite filaments
url https://www.mdpi.com/2073-4360/13/5/839
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