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3D Printing of High Viscosity Reinforced Silicone Elastomers

Recent advances in additive manufacturing, specifically direct ink writing (DIW) and ink-jetting, have enabled the production of elastomeric silicone parts with deterministic control over the structure, shape, and mechanical properties. These new technologies offer rapid prototyping advantages and f...

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Autores principales: Rodriguez, Nicholas, Ruelas, Samantha, Forien, Jean-Baptiste, Dudukovic, Nikola, DeOtte, Josh, Rodriguez, Jennifer, Moran, Bryan, Lewicki, James P., Duoss, Eric B., Oakdale, James S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8309234/
https://www.ncbi.nlm.nih.gov/pubmed/34300996
http://dx.doi.org/10.3390/polym13142239
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author Rodriguez, Nicholas
Ruelas, Samantha
Forien, Jean-Baptiste
Dudukovic, Nikola
DeOtte, Josh
Rodriguez, Jennifer
Moran, Bryan
Lewicki, James P.
Duoss, Eric B.
Oakdale, James S.
author_facet Rodriguez, Nicholas
Ruelas, Samantha
Forien, Jean-Baptiste
Dudukovic, Nikola
DeOtte, Josh
Rodriguez, Jennifer
Moran, Bryan
Lewicki, James P.
Duoss, Eric B.
Oakdale, James S.
author_sort Rodriguez, Nicholas
collection PubMed
description Recent advances in additive manufacturing, specifically direct ink writing (DIW) and ink-jetting, have enabled the production of elastomeric silicone parts with deterministic control over the structure, shape, and mechanical properties. These new technologies offer rapid prototyping advantages and find applications in various fields, including biomedical devices, prosthetics, metamaterials, and soft robotics. Stereolithography (SLA) is a complementary approach with the ability to print with finer features and potentially higher throughput. However, all high-performance silicone elastomers are composites of polysiloxane networks reinforced with particulate filler, and consequently, silicone resins tend to have high viscosities (gel- or paste-like), which complicates or completely inhibits the layer-by-layer recoating process central to most SLA technologies. Herein, the design and build of a digital light projection SLA printer suitable for handling high-viscosity resins is demonstrated. Further, a series of UV-curable silicone resins with thiol-ene crosslinking and reinforced by a combination of fumed silica and MQ resins are also described. The resulting silicone elastomers are shown to have tunable mechanical properties, with 100–350% elongation and ultimate tensile strength from 1 to 2.5 MPa. Three-dimensional printed features of 0.4 mm were achieved, and complexity is demonstrated by octet-truss lattices that display negative stiffness.
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spelling pubmed-83092342021-07-25 3D Printing of High Viscosity Reinforced Silicone Elastomers Rodriguez, Nicholas Ruelas, Samantha Forien, Jean-Baptiste Dudukovic, Nikola DeOtte, Josh Rodriguez, Jennifer Moran, Bryan Lewicki, James P. Duoss, Eric B. Oakdale, James S. Polymers (Basel) Article Recent advances in additive manufacturing, specifically direct ink writing (DIW) and ink-jetting, have enabled the production of elastomeric silicone parts with deterministic control over the structure, shape, and mechanical properties. These new technologies offer rapid prototyping advantages and find applications in various fields, including biomedical devices, prosthetics, metamaterials, and soft robotics. Stereolithography (SLA) is a complementary approach with the ability to print with finer features and potentially higher throughput. However, all high-performance silicone elastomers are composites of polysiloxane networks reinforced with particulate filler, and consequently, silicone resins tend to have high viscosities (gel- or paste-like), which complicates or completely inhibits the layer-by-layer recoating process central to most SLA technologies. Herein, the design and build of a digital light projection SLA printer suitable for handling high-viscosity resins is demonstrated. Further, a series of UV-curable silicone resins with thiol-ene crosslinking and reinforced by a combination of fumed silica and MQ resins are also described. The resulting silicone elastomers are shown to have tunable mechanical properties, with 100–350% elongation and ultimate tensile strength from 1 to 2.5 MPa. Three-dimensional printed features of 0.4 mm were achieved, and complexity is demonstrated by octet-truss lattices that display negative stiffness. MDPI 2021-07-08 /pmc/articles/PMC8309234/ /pubmed/34300996 http://dx.doi.org/10.3390/polym13142239 Text en © 2021 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
Rodriguez, Nicholas
Ruelas, Samantha
Forien, Jean-Baptiste
Dudukovic, Nikola
DeOtte, Josh
Rodriguez, Jennifer
Moran, Bryan
Lewicki, James P.
Duoss, Eric B.
Oakdale, James S.
3D Printing of High Viscosity Reinforced Silicone Elastomers
title 3D Printing of High Viscosity Reinforced Silicone Elastomers
title_full 3D Printing of High Viscosity Reinforced Silicone Elastomers
title_fullStr 3D Printing of High Viscosity Reinforced Silicone Elastomers
title_full_unstemmed 3D Printing of High Viscosity Reinforced Silicone Elastomers
title_short 3D Printing of High Viscosity Reinforced Silicone Elastomers
title_sort 3d printing of high viscosity reinforced silicone elastomers
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8309234/
https://www.ncbi.nlm.nih.gov/pubmed/34300996
http://dx.doi.org/10.3390/polym13142239
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