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Enhancement of 3D Printability by FDM and Electrical Conductivity of PLA/MWCNT Filaments Using Lignin as Bio-Dispersant

To increase the applications of FDM (fusion deposition modeling) 3D printing in electronics, it is necessary to develop new filaments with good electrical properties and suitable processability. In this work, polymer composites filament-shaped with superior electrical performance based on polylactic...

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Autores principales: Lage-Rivera, Silvia, Ares-Pernas, Ana, Becerra Permuy, Juan Carlos, Gosset, Anne, Abad, María-José
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9960198/
https://www.ncbi.nlm.nih.gov/pubmed/36850283
http://dx.doi.org/10.3390/polym15040999
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author Lage-Rivera, Silvia
Ares-Pernas, Ana
Becerra Permuy, Juan Carlos
Gosset, Anne
Abad, María-José
author_facet Lage-Rivera, Silvia
Ares-Pernas, Ana
Becerra Permuy, Juan Carlos
Gosset, Anne
Abad, María-José
author_sort Lage-Rivera, Silvia
collection PubMed
description To increase the applications of FDM (fusion deposition modeling) 3D printing in electronics, it is necessary to develop new filaments with good electrical properties and suitable processability. In this work, polymer composites filament-shaped with superior electrical performance based on polylactic acid (PLA) carbon nanotubes and lignin blends have been studied by combining solution mixing and melt blending. The results showed that composites achieve electrical percolation from 5 wt.% of nanotubes, with high electrical conductivity. Moreover, the introduction of a plasticizing additive, lignin, improved the printability of the material while increasing its electrical conductivity (from (1.5 ± 0.9) [Formula: see text] 10(−7) S [Formula: see text] cm(−1) to (1.4 ± 0.9) [Formula: see text] 10(−1) S cm(−1) with 5 wt.% carbon nanotubes and 1 wt.% lignin) maintaining the mechanical properties of composite without additive. To validate lignin performance, its effect on PLA/MWCNT was compare with polyethylene glycol. PEG is a well-known commercial additive, and its use as dispersant and plasticizer in PLA/MWCNT composites has been proven in bibliography. PLA/MWCNT composites display easier processability by 3D printing and more adhesion between the printed layers with lignin than with PEG. In addition, the polyethylene glycol produces a plasticizing effect in the PLA matrix reducing the composite stiffness. Finally, an interactive electronic prototype was 3D printed to assess the printability of the new conducting filaments with 5 wt.% of MWCNT.
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spelling pubmed-99601982023-02-26 Enhancement of 3D Printability by FDM and Electrical Conductivity of PLA/MWCNT Filaments Using Lignin as Bio-Dispersant Lage-Rivera, Silvia Ares-Pernas, Ana Becerra Permuy, Juan Carlos Gosset, Anne Abad, María-José Polymers (Basel) Article To increase the applications of FDM (fusion deposition modeling) 3D printing in electronics, it is necessary to develop new filaments with good electrical properties and suitable processability. In this work, polymer composites filament-shaped with superior electrical performance based on polylactic acid (PLA) carbon nanotubes and lignin blends have been studied by combining solution mixing and melt blending. The results showed that composites achieve electrical percolation from 5 wt.% of nanotubes, with high electrical conductivity. Moreover, the introduction of a plasticizing additive, lignin, improved the printability of the material while increasing its electrical conductivity (from (1.5 ± 0.9) [Formula: see text] 10(−7) S [Formula: see text] cm(−1) to (1.4 ± 0.9) [Formula: see text] 10(−1) S cm(−1) with 5 wt.% carbon nanotubes and 1 wt.% lignin) maintaining the mechanical properties of composite without additive. To validate lignin performance, its effect on PLA/MWCNT was compare with polyethylene glycol. PEG is a well-known commercial additive, and its use as dispersant and plasticizer in PLA/MWCNT composites has been proven in bibliography. PLA/MWCNT composites display easier processability by 3D printing and more adhesion between the printed layers with lignin than with PEG. In addition, the polyethylene glycol produces a plasticizing effect in the PLA matrix reducing the composite stiffness. Finally, an interactive electronic prototype was 3D printed to assess the printability of the new conducting filaments with 5 wt.% of MWCNT. MDPI 2023-02-17 /pmc/articles/PMC9960198/ /pubmed/36850283 http://dx.doi.org/10.3390/polym15040999 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
Lage-Rivera, Silvia
Ares-Pernas, Ana
Becerra Permuy, Juan Carlos
Gosset, Anne
Abad, María-José
Enhancement of 3D Printability by FDM and Electrical Conductivity of PLA/MWCNT Filaments Using Lignin as Bio-Dispersant
title Enhancement of 3D Printability by FDM and Electrical Conductivity of PLA/MWCNT Filaments Using Lignin as Bio-Dispersant
title_full Enhancement of 3D Printability by FDM and Electrical Conductivity of PLA/MWCNT Filaments Using Lignin as Bio-Dispersant
title_fullStr Enhancement of 3D Printability by FDM and Electrical Conductivity of PLA/MWCNT Filaments Using Lignin as Bio-Dispersant
title_full_unstemmed Enhancement of 3D Printability by FDM and Electrical Conductivity of PLA/MWCNT Filaments Using Lignin as Bio-Dispersant
title_short Enhancement of 3D Printability by FDM and Electrical Conductivity of PLA/MWCNT Filaments Using Lignin as Bio-Dispersant
title_sort enhancement of 3d printability by fdm and electrical conductivity of pla/mwcnt filaments using lignin as bio-dispersant
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9960198/
https://www.ncbi.nlm.nih.gov/pubmed/36850283
http://dx.doi.org/10.3390/polym15040999
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