Anisotropic properties of elastomeric nanocomposites based on natural rubber and sp2 carbon allotropes

This work provides a comprehensive investigation of the anisotropic mechanical and electrical properties of elastomeric nanocomposites based on natural rubber and sp2 carbon allotropes. They can be either nanometric and with high shape anisotropy like Carbon Nanotubes (CNT) and lamellar nanographite...

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Main Authors: S. Agnelli, S. Pandini, F. Torricelli, P. Romele, A. Serafini, V. Barbera, M. Galimberti
Format: Article
Language:English
Published: Budapest University of Technology 2018-08-01
Series:eXPRESS Polymer Letters
Subjects:
Online Access:http://www.expresspolymlett.com/letolt.php?file=EPL-0009010&mi=cd
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spelling doaj-f9cc561620994cb7845743168d96b0f72020-11-24T23:15:33ZengBudapest University of Technology eXPRESS Polymer Letters1788-618X2018-08-0112871373010.3144/expresspolymlett.2018.61Anisotropic properties of elastomeric nanocomposites based on natural rubber and sp2 carbon allotropesS. AgnelliS. PandiniF. TorricelliP. RomeleA. SerafiniV. BarberaM. GalimbertiThis work provides a comprehensive investigation of the anisotropic mechanical and electrical properties of elastomeric nanocomposites based on natural rubber and sp2 carbon allotropes. They can be either nanometric and with high shape anisotropy like Carbon Nanotubes (CNT) and lamellar nanographite, or nanostructured and nearly isometric like carbon black. Studies were performed on calendered and compression molded plates. A complete mechanical characterization along all main directions could be performed by a non-standard testing approach. Composites with nanometric, high aspect ratio fillers gave rise to remarkable mechanical anisotropy, revealing an orthotropic and transversally isotropic response: modulus values were very similar in the sheet plane and much larger (almost twice as much) in the orthogonal direction. The electrical anisotropy achieved its maximum at lower CNT content. Composites with carbon black did not reveal mechanical anisotropy, while, quite strikingly, a very large electrical anisotropy was observed for carbon black content close to the percolation threshold. These results provide insights into the anisotropic behavior of nanofilled elastomers, and could pave the way to their exploitation in advanced engineering design and biomimicking biomedical applications.http://www.expresspolymlett.com/letolt.php?file=EPL-0009010&mi=cdNanocompositesmechanical anisotropyelectrical anisotropy
collection DOAJ
language English
format Article
sources DOAJ
author S. Agnelli
S. Pandini
F. Torricelli
P. Romele
A. Serafini
V. Barbera
M. Galimberti
spellingShingle S. Agnelli
S. Pandini
F. Torricelli
P. Romele
A. Serafini
V. Barbera
M. Galimberti
Anisotropic properties of elastomeric nanocomposites based on natural rubber and sp2 carbon allotropes
eXPRESS Polymer Letters
Nanocomposites
mechanical anisotropy
electrical anisotropy
author_facet S. Agnelli
S. Pandini
F. Torricelli
P. Romele
A. Serafini
V. Barbera
M. Galimberti
author_sort S. Agnelli
title Anisotropic properties of elastomeric nanocomposites based on natural rubber and sp2 carbon allotropes
title_short Anisotropic properties of elastomeric nanocomposites based on natural rubber and sp2 carbon allotropes
title_full Anisotropic properties of elastomeric nanocomposites based on natural rubber and sp2 carbon allotropes
title_fullStr Anisotropic properties of elastomeric nanocomposites based on natural rubber and sp2 carbon allotropes
title_full_unstemmed Anisotropic properties of elastomeric nanocomposites based on natural rubber and sp2 carbon allotropes
title_sort anisotropic properties of elastomeric nanocomposites based on natural rubber and sp2 carbon allotropes
publisher Budapest University of Technology
series eXPRESS Polymer Letters
issn 1788-618X
publishDate 2018-08-01
description This work provides a comprehensive investigation of the anisotropic mechanical and electrical properties of elastomeric nanocomposites based on natural rubber and sp2 carbon allotropes. They can be either nanometric and with high shape anisotropy like Carbon Nanotubes (CNT) and lamellar nanographite, or nanostructured and nearly isometric like carbon black. Studies were performed on calendered and compression molded plates. A complete mechanical characterization along all main directions could be performed by a non-standard testing approach. Composites with nanometric, high aspect ratio fillers gave rise to remarkable mechanical anisotropy, revealing an orthotropic and transversally isotropic response: modulus values were very similar in the sheet plane and much larger (almost twice as much) in the orthogonal direction. The electrical anisotropy achieved its maximum at lower CNT content. Composites with carbon black did not reveal mechanical anisotropy, while, quite strikingly, a very large electrical anisotropy was observed for carbon black content close to the percolation threshold. These results provide insights into the anisotropic behavior of nanofilled elastomers, and could pave the way to their exploitation in advanced engineering design and biomimicking biomedical applications.
topic Nanocomposites
mechanical anisotropy
electrical anisotropy
url http://www.expresspolymlett.com/letolt.php?file=EPL-0009010&mi=cd
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