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Complex Geometry Strain Sensors Based on 3D Printed Nanocomposites: Spring, Three-Column Device and Footstep-Sensing Platform

Electromechanical sensing devices, based on resins doped with carbon nanotubes, were developed by digital light processing (DLP) 3D printing technology in order to increase design freedom and identify new future and innovative applications. The analysis of electromechanical properties was carried ou...

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Autores principales: Cortés, Alejandro, Sánchez-Romate, Xoan F., Jiménez-Suárez, Alberto, Campo, Mónica, Esmaeili, Ali, Sbarufatti, Claudio, Ureña, Alejandro, Prolongo, Silvia G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8146940/
https://www.ncbi.nlm.nih.gov/pubmed/33922883
http://dx.doi.org/10.3390/nano11051106
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author Cortés, Alejandro
Sánchez-Romate, Xoan F.
Jiménez-Suárez, Alberto
Campo, Mónica
Esmaeili, Ali
Sbarufatti, Claudio
Ureña, Alejandro
Prolongo, Silvia G.
author_facet Cortés, Alejandro
Sánchez-Romate, Xoan F.
Jiménez-Suárez, Alberto
Campo, Mónica
Esmaeili, Ali
Sbarufatti, Claudio
Ureña, Alejandro
Prolongo, Silvia G.
author_sort Cortés, Alejandro
collection PubMed
description Electromechanical sensing devices, based on resins doped with carbon nanotubes, were developed by digital light processing (DLP) 3D printing technology in order to increase design freedom and identify new future and innovative applications. The analysis of electromechanical properties was carried out on specific sensors manufactured by DLP 3D printing technology with complex geometries: a spring, a three-column device and a footstep-sensing platform based on the three-column device. All of them show a great sensitivity of the measured electrical resistance to the applied load and high cyclic reproducibility, demonstrating their versatility and applicability to be implemented in numerous items in our daily lives or in industrial devices. Different types of carbon nanotubes—single-walled, double-walled and multi-walled CNTs (SWCNTs, DWCNTs, MWCNTs)—were used to evaluate the effect of their morphology on electrical and electromechanical performance. SWCNT- and DWCNT-doped nanocomposites presented a higher T(g) compared with MWCNT-doped nanocomposites due to a lower UV light shielding effect. This phenomenon also justifies the decrease of nanocomposite T(g) with the increase of CNT content in every case. The electromechanical analysis reveals that SWCNT- and DWCNT-doped nanocomposites show a higher electromechanical performance than nanocomposites doped with MWCNTs, with a slight increment of strain sensitivity in tensile conditions, but also a significant strain sensitivity gain at bending conditions.
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spelling pubmed-81469402021-05-26 Complex Geometry Strain Sensors Based on 3D Printed Nanocomposites: Spring, Three-Column Device and Footstep-Sensing Platform Cortés, Alejandro Sánchez-Romate, Xoan F. Jiménez-Suárez, Alberto Campo, Mónica Esmaeili, Ali Sbarufatti, Claudio Ureña, Alejandro Prolongo, Silvia G. Nanomaterials (Basel) Article Electromechanical sensing devices, based on resins doped with carbon nanotubes, were developed by digital light processing (DLP) 3D printing technology in order to increase design freedom and identify new future and innovative applications. The analysis of electromechanical properties was carried out on specific sensors manufactured by DLP 3D printing technology with complex geometries: a spring, a three-column device and a footstep-sensing platform based on the three-column device. All of them show a great sensitivity of the measured electrical resistance to the applied load and high cyclic reproducibility, demonstrating their versatility and applicability to be implemented in numerous items in our daily lives or in industrial devices. Different types of carbon nanotubes—single-walled, double-walled and multi-walled CNTs (SWCNTs, DWCNTs, MWCNTs)—were used to evaluate the effect of their morphology on electrical and electromechanical performance. SWCNT- and DWCNT-doped nanocomposites presented a higher T(g) compared with MWCNT-doped nanocomposites due to a lower UV light shielding effect. This phenomenon also justifies the decrease of nanocomposite T(g) with the increase of CNT content in every case. The electromechanical analysis reveals that SWCNT- and DWCNT-doped nanocomposites show a higher electromechanical performance than nanocomposites doped with MWCNTs, with a slight increment of strain sensitivity in tensile conditions, but also a significant strain sensitivity gain at bending conditions. MDPI 2021-04-25 /pmc/articles/PMC8146940/ /pubmed/33922883 http://dx.doi.org/10.3390/nano11051106 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
Cortés, Alejandro
Sánchez-Romate, Xoan F.
Jiménez-Suárez, Alberto
Campo, Mónica
Esmaeili, Ali
Sbarufatti, Claudio
Ureña, Alejandro
Prolongo, Silvia G.
Complex Geometry Strain Sensors Based on 3D Printed Nanocomposites: Spring, Three-Column Device and Footstep-Sensing Platform
title Complex Geometry Strain Sensors Based on 3D Printed Nanocomposites: Spring, Three-Column Device and Footstep-Sensing Platform
title_full Complex Geometry Strain Sensors Based on 3D Printed Nanocomposites: Spring, Three-Column Device and Footstep-Sensing Platform
title_fullStr Complex Geometry Strain Sensors Based on 3D Printed Nanocomposites: Spring, Three-Column Device and Footstep-Sensing Platform
title_full_unstemmed Complex Geometry Strain Sensors Based on 3D Printed Nanocomposites: Spring, Three-Column Device and Footstep-Sensing Platform
title_short Complex Geometry Strain Sensors Based on 3D Printed Nanocomposites: Spring, Three-Column Device and Footstep-Sensing Platform
title_sort complex geometry strain sensors based on 3d printed nanocomposites: spring, three-column device and footstep-sensing platform
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8146940/
https://www.ncbi.nlm.nih.gov/pubmed/33922883
http://dx.doi.org/10.3390/nano11051106
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