Enhanced Piezoelectricity in Sustainable-by-design Chitosan Nanocomposite Elastomers for Prosthetics, Robotics, and Circular Electronics

Fuente: arXiv
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Autori principali: Nicoletti, Jacopo, Puppulin, Leonardo, Routurier, Julie, Frroku, Saimir, Loudhaief, Nouha, Crestini, Claudia, Perosa, Alvise, Selva, Maurizio, Gigli, Matteo, De Fazio, Domenico, Salvatore, Giovanni Antonio
Natura: Preprint
Pubblicazione: 2024
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author Nicoletti, Jacopo
Puppulin, Leonardo
Routurier, Julie
Frroku, Saimir
Loudhaief, Nouha
Crestini, Claudia
Perosa, Alvise
Selva, Maurizio
Gigli, Matteo
De Fazio, Domenico
Salvatore, Giovanni Antonio
author_facet Nicoletti, Jacopo
Puppulin, Leonardo
Routurier, Julie
Frroku, Saimir
Loudhaief, Nouha
Crestini, Claudia
Perosa, Alvise
Selva, Maurizio
Gigli, Matteo
De Fazio, Domenico
Salvatore, Giovanni Antonio
contents Piezoelectricity, the generation of electric charge in response to mechanical stress, is a key property in both natural and synthetic materials. This study significantly boosts the piezoelectric response of chitosan, a biodegradable biopolymer, by integrating chitin/chitosan nanocrystals into natural chitosan-based thin film elastomers. The resulting materials achieve d$_{33}$ values of 15-19 pmV$^{-1}$, a marked improvement over the 5-9 pmV$^{-1}$ observed in pure chitosan films thanks to increased crystallinity from the nanocrystals. We utilize piezoresponse force microscopy (PFM) to accurately measure the d$_{33}$ coefficient, employing an engineered extraction method that eliminates the electrostatic contribution, which can overestimate the piezoelectric response. The resulting chitosan elastomers exhibit elastic deformation up to 40\% strain and a Young's modulus of approximately 100 MPa, similar to soft tissues. These properties, along with the fact that the employed materials can be entirely crafted from upcycled biowaste, make these elastomers ideal for prosthetics, wearable devices, energy harvesters, and sustainable transducers. Our findings underscore the potential of chitosan-based piezoelectric materials for advanced applications in biotechnology, soft robotics, and the green Internet of Things.
format Preprint
id arxiv_https___arxiv_org_abs_2407_18585
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Enhanced Piezoelectricity in Sustainable-by-design Chitosan Nanocomposite Elastomers for Prosthetics, Robotics, and Circular Electronics
Nicoletti, Jacopo
Puppulin, Leonardo
Routurier, Julie
Frroku, Saimir
Loudhaief, Nouha
Crestini, Claudia
Perosa, Alvise
Selva, Maurizio
Gigli, Matteo
De Fazio, Domenico
Salvatore, Giovanni Antonio
Other Condensed Matter
Piezoelectricity, the generation of electric charge in response to mechanical stress, is a key property in both natural and synthetic materials. This study significantly boosts the piezoelectric response of chitosan, a biodegradable biopolymer, by integrating chitin/chitosan nanocrystals into natural chitosan-based thin film elastomers. The resulting materials achieve d$_{33}$ values of 15-19 pmV$^{-1}$, a marked improvement over the 5-9 pmV$^{-1}$ observed in pure chitosan films thanks to increased crystallinity from the nanocrystals. We utilize piezoresponse force microscopy (PFM) to accurately measure the d$_{33}$ coefficient, employing an engineered extraction method that eliminates the electrostatic contribution, which can overestimate the piezoelectric response. The resulting chitosan elastomers exhibit elastic deformation up to 40\% strain and a Young's modulus of approximately 100 MPa, similar to soft tissues. These properties, along with the fact that the employed materials can be entirely crafted from upcycled biowaste, make these elastomers ideal for prosthetics, wearable devices, energy harvesters, and sustainable transducers. Our findings underscore the potential of chitosan-based piezoelectric materials for advanced applications in biotechnology, soft robotics, and the green Internet of Things.
title Enhanced Piezoelectricity in Sustainable-by-design Chitosan Nanocomposite Elastomers for Prosthetics, Robotics, and Circular Electronics
topic Other Condensed Matter
url https://arxiv.org/abs/2407.18585