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Electrical Resistivity of 3D-Printed Polymer Elements

During this study, the resistivity of electrically conductive structures 3D-printed via fused filament fabrication (FFF) was investigated. Electrical resistivity characterisation was performed on various structural levels of the whole 3D-printed body, starting from the single traxel (3D-printed sing...

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Autores principales: Stankevich, Stanislav, Sevcenko, Jevgenijs, Bulderberga, Olga, Dutovs, Aleksandrs, Erts, Donat, Piskunovs, Maksims, Ivanovs, Valerijs, Ivanov, Victor, Aniskevich, Andrey
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10385277/
https://www.ncbi.nlm.nih.gov/pubmed/37514378
http://dx.doi.org/10.3390/polym15142988
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author Stankevich, Stanislav
Sevcenko, Jevgenijs
Bulderberga, Olga
Dutovs, Aleksandrs
Erts, Donat
Piskunovs, Maksims
Ivanovs, Valerijs
Ivanov, Victor
Aniskevich, Andrey
author_facet Stankevich, Stanislav
Sevcenko, Jevgenijs
Bulderberga, Olga
Dutovs, Aleksandrs
Erts, Donat
Piskunovs, Maksims
Ivanovs, Valerijs
Ivanov, Victor
Aniskevich, Andrey
author_sort Stankevich, Stanislav
collection PubMed
description During this study, the resistivity of electrically conductive structures 3D-printed via fused filament fabrication (FFF) was investigated. Electrical resistivity characterisation was performed on various structural levels of the whole 3D-printed body, starting from the single traxel (3D-printed single track element), continuing with monolayer and multilayer formation, finalising with hybrid structures of a basic nonconductive polymer and an electrically conductive one. Two commercial conductive materials were studied: Proto-Pasta and Koltron G1. It was determined that the geometry and resistivity of a single traxel influenced the resistivity of all subsequent structural elements of the printed body and affected its electrical anisotropy. In addition, the results showed that thermal postprocessing (annealing) affected the resistivity of a standalone extruded fibre (extruded filament through a printer nozzle in freefall) and traxel. The effect of Joule heating and piezoresistive properties of hybrid structures with imprinted conductive elements made from Koltron G1 were investigated. Results revealed good thermal stability within 70 °C and considerable piezoresistive response with a gauge factor of 15–25 at both low 0.1% and medium 1.5% elongations, indicating the potential of such structures for use as a heat element and strain gauge sensor in applications involving stiff materials and low elongations.
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spelling pubmed-103852772023-07-30 Electrical Resistivity of 3D-Printed Polymer Elements Stankevich, Stanislav Sevcenko, Jevgenijs Bulderberga, Olga Dutovs, Aleksandrs Erts, Donat Piskunovs, Maksims Ivanovs, Valerijs Ivanov, Victor Aniskevich, Andrey Polymers (Basel) Article During this study, the resistivity of electrically conductive structures 3D-printed via fused filament fabrication (FFF) was investigated. Electrical resistivity characterisation was performed on various structural levels of the whole 3D-printed body, starting from the single traxel (3D-printed single track element), continuing with monolayer and multilayer formation, finalising with hybrid structures of a basic nonconductive polymer and an electrically conductive one. Two commercial conductive materials were studied: Proto-Pasta and Koltron G1. It was determined that the geometry and resistivity of a single traxel influenced the resistivity of all subsequent structural elements of the printed body and affected its electrical anisotropy. In addition, the results showed that thermal postprocessing (annealing) affected the resistivity of a standalone extruded fibre (extruded filament through a printer nozzle in freefall) and traxel. The effect of Joule heating and piezoresistive properties of hybrid structures with imprinted conductive elements made from Koltron G1 were investigated. Results revealed good thermal stability within 70 °C and considerable piezoresistive response with a gauge factor of 15–25 at both low 0.1% and medium 1.5% elongations, indicating the potential of such structures for use as a heat element and strain gauge sensor in applications involving stiff materials and low elongations. MDPI 2023-07-08 /pmc/articles/PMC10385277/ /pubmed/37514378 http://dx.doi.org/10.3390/polym15142988 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
Stankevich, Stanislav
Sevcenko, Jevgenijs
Bulderberga, Olga
Dutovs, Aleksandrs
Erts, Donat
Piskunovs, Maksims
Ivanovs, Valerijs
Ivanov, Victor
Aniskevich, Andrey
Electrical Resistivity of 3D-Printed Polymer Elements
title Electrical Resistivity of 3D-Printed Polymer Elements
title_full Electrical Resistivity of 3D-Printed Polymer Elements
title_fullStr Electrical Resistivity of 3D-Printed Polymer Elements
title_full_unstemmed Electrical Resistivity of 3D-Printed Polymer Elements
title_short Electrical Resistivity of 3D-Printed Polymer Elements
title_sort electrical resistivity of 3d-printed polymer elements
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10385277/
https://www.ncbi.nlm.nih.gov/pubmed/37514378
http://dx.doi.org/10.3390/polym15142988
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