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Halloysite nanotubes sandwiched between chitosan layers: novel bionanocomposites with multilayer structures

This work is a contribution to the design of multilayer biocomposites based on halloysite nanotubes (HNTs) and chitosan. Both the polymer and nanotubular inorganic additive have been selected among easily available green materials. An innovative preparation procedure based on the sequential casting...

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Published in:New journal of chemistry 2018, Vol.42 (11), p.8384-8390
Main Authors: Bertolino, Vanessa, Cavallaro, Giuseppe, Lazzara, Giuseppe, Milioto, Stefana, Parisi, Filippo
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Language:English
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cited_by cdi_FETCH-LOGICAL-c259t-93669a69fe62f5cc29178f05b3745a3b8da690eecddd2311bb772c61eb13b47c3
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container_end_page 8390
container_issue 11
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container_title New journal of chemistry
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creator Bertolino, Vanessa
Cavallaro, Giuseppe
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description This work is a contribution to the design of multilayer biocomposites based on halloysite nanotubes (HNTs) and chitosan. Both the polymer and nanotubular inorganic additive have been selected among easily available green materials. An innovative preparation procedure based on the sequential casting of chitosan and HNTs has been proposed in order to obtain multilayer composite biofilms. A physico-chemical investigation (contact angle measurements, differential scanning calorimetry, thermogravimetry) has been conducted to characterize the bionanocomposites. As evidenced by scanning electron microscopy, the nanocomposites possess an intermediate halloysite layer between the chitosan ones. The multilayer morphology of the prepared chitosan/HNT nanocomposites has been confirmed by water contact angle measurements, which revealed that the hybrid films present a hydrophobic surface. The peculiar sandwich-like morphology of the chitosan/HNT hybrid materials has been correlated to their thermal behavior under inert and oxidative atmospheres. The kinetic aspects of chitosan degradation have been studied by a non-isothermal thermogravimetric approach (Friedman's method), while the suitability of HNTs as flame retardant fillers of multilayer nanocomposites has been estimated by the thermodynamic parameters of oxidative degradation. According to the thermogravimetric data, the formation of a well-compacted middle layer of HNTs has induced a reliable decrease in the activation energy of the degradation of chitosan. Differential scanning calorimetry experiments showed that the nanocomposites possess an enhanced ignition temperature compared with pure chitosan. This paper opens new sustainable prospects for the preparation of novel nanocomposites with layered structures that can be strategic for packaging, tissue engineering, and pharmaceutical applications.
doi_str_mv 10.1039/C8NJ01161C
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source Royal Society of Chemistry
subjects Biomedical materials
Chitosan
Contact angle
Degradation
Differential scanning calorimetry
Fillers
Flame retardants
Heat measurement
Ignition temperature
Morphology
Multilayers
Nanocomposites
Nanotubes
Parameter estimation
Scanning electron microscopy
Thermodynamic properties
Thermogravimetric analysis
Thermogravimetry
Tissue engineering
title Halloysite nanotubes sandwiched between chitosan layers: novel bionanocomposites with multilayer structures
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