Carbon Dioxide Derived Polycarbonate Nanocomposites With Multiwalled Carbon Nanotubes: Conductive and Piezoresistive Materials Towards Sustainable Electronics

ABSTRACT Bisphenol A polycarbonates are widely employed material among others, in electronics but their synthesis entails healthy concerns. Polycarbonates (PCs), thanks to their carbonate moiety, are the ideal candidates to substitute fossil feedstock by carbon dioxide (CO 2 ) in this manner synthesizing sustainable CO 2 derived polycarbonates (CO 2 ‐PCs). In this work, two commercial polymers: poly(propylene)carbonate and poly(ethylene)carbonate and one synthesized in our laboratory: poly(butylene)carbonate, have been loaded with multiwalled carbon nanotubes in order to explore their use as active materials for sustainable piezoresistive applications. The mechanical properties of the polymeric matrices show high strain > 859% and young modulus ≈1.9–2.9 MPa. The electrical conductivity is dominated by the filler network, measuring electrical conductivity values in the range 0.10–0.16 of S m −1 for 3.0 wt.% MWCNTs composites. Given the similar mechanical and electrical properties, the piezoresistive effect has been measured in lab‐made matrix loaded with 0.5 and 3.0 wt.% MWCNTs. The performance characterized by gauge factors (GF) results < 4 up to 50% of strain have been measured. Herein, this study promotes material development contributing towards sustainable electronics and digitalization, as demonstrated by a life‐cycle‐oriented screening assessment.

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Publication Details

Journal
Journal of Polymer Science
Published
2026-09-17
DOI
https://doi.org/10.1002/pola.70329
Primary Topic
Carbon dioxide utilization in catalysis
Type
article
Field-Weighted Citation Impact
0.00

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article

Carbon Dioxide Derived Polycarbonate Nanocomposites With Multiwalled Carbon Nanotubes: Conductive and Piezoresistive Materials Towards Sustainable Electronics

P. Costa, L. Rubio-Peña, S. Lanceros‐Méndez, Ricardo Brito‐Pereira et al.
Journal of Polymer Science
Carbon dioxide utilization in catalysis
article

Carbon Dioxide Derived Polycarbonate Nanocomposites With Multiwalled Carbon Nanotubes: Conductive and Piezoresistive Materials Towards Sustainable Electronics

P. Costa, L. Rubio-Peña, S. Lanceros‐Méndez, Ricardo Brito‐Pereira, Pablo Ortiz, Nikola Peřinka, José Luis Vilas‐Vilela, Sergio Santos-Moreno, Itziar Oyarzabal, María Álvarez, Ane Martín-Ayerdi, Sergio Merillas
article en

Abstract

ABSTRACT Bisphenol A polycarbonates are widely employed material among others, in electronics but their synthesis entails healthy concerns. Polycarbonates (PCs), thanks to their carbonate moiety, are the ideal candidates to substitute fossil feedstock by carbon dioxide (CO 2 ) in this manner synthesizing sustainable CO 2 derived polycarbonates (CO 2 ‐PCs). In this work, two commercial polymers: poly(propylene)carbonate and poly(ethylene)carbonate and one synthesized in our laboratory: poly(butylene)carbonate, have been loaded with multiwalled carbon nanotubes in order to explore their use as active materials for sustainable piezoresistive applications. The mechanical properties of the polymeric matrices show high strain > 859% and young modulus ≈1.9–2.9 MPa. The electrical conductivity is dominated by the filler network, measuring electrical conductivity values in the range 0.10–0.16 of S m −1 for 3.0 wt.% MWCNTs composites. Given the similar mechanical and electrical properties, the piezoresistive effect has been measured in lab‐made matrix loaded with 0.5 and 3.0 wt.% MWCNTs. The performance characterized by gauge factors (GF) results < 4 up to 50% of strain have been measured. Herein, this study promotes material development contributing towards sustainable electronics and digitalization, as demonstrated by a life‐cycle‐oriented screening assessment.

Journal of Polymer Science
Ikerbasque (ES), University of the Basque Country (ES), Basque Center for Materials, Applications and Nanostructures (ES), Universidad de Cádiz (ES), GAIKER Technology Centre (ES), University of Minho (PT)
Eusko Jaurlaritza
Responsible consumption and production
Openalex Percentile: Top 26%
Carbon dioxide utilization in catalysis
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