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Polyamide 11 Composites Reinforced with Diatomite Biofiller—Mechanical, Rheological and Crystallization Properties

Amorphic diatomaceous earth is derived from natural sources, and polyamide 11 (PA11) is produced from materials of natural origin. Both of these materials show a low harmfulness to the environment and a reduced carbon footprint. This is why the combination of these two constituents is beneficial not...

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Autores principales: Dobrosielska, Marta, Dobrucka, Renata, Brząkalski, Dariusz, Kozera, Paulina, Martyła, Agnieszka, Gabriel, Ewa, Kurzydłowski, Krzysztof J., Przekop, Robert E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10053006/
https://www.ncbi.nlm.nih.gov/pubmed/36987343
http://dx.doi.org/10.3390/polym15061563
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author Dobrosielska, Marta
Dobrucka, Renata
Brząkalski, Dariusz
Kozera, Paulina
Martyła, Agnieszka
Gabriel, Ewa
Kurzydłowski, Krzysztof J.
Przekop, Robert E.
author_facet Dobrosielska, Marta
Dobrucka, Renata
Brząkalski, Dariusz
Kozera, Paulina
Martyła, Agnieszka
Gabriel, Ewa
Kurzydłowski, Krzysztof J.
Przekop, Robert E.
author_sort Dobrosielska, Marta
collection PubMed
description Amorphic diatomaceous earth is derived from natural sources, and polyamide 11 (PA11) is produced from materials of natural origin. Both of these materials show a low harmfulness to the environment and a reduced carbon footprint. This is why the combination of these two constituents is beneficial not only to improve the physicochemical and mechanical properties of polyamide 11 but also to produce a biocomposite. For the purpose of this paper, the test biocomposite was produced by combining polyamide 11, as well as basic and pre-fractionated diatomaceous earth, which had been subjected to silanization. The produced composites were used to carry out rheological (melt flow rate-MFR), mechanical (tensile strength, bending strength, impact strength), crystallographic (X-ray Diffraction-XRD), thermal and thermo-mechanical (differential scanning calorimetry–DSC, dynamic mechanical thermal analysis–DMTA) analyses, as well as a study of hydrophobic–hydrophilic properties of the material surface (wetting angle) and imaging of the surface of the composites and the fractured specimens. The tests showed that the additive 3-aminopropyltriethoxysilane (APTES) acted as an agent that improved the elasticity of composites and the melt flow rate. In addition, the produced composites showed a hydrophilic surface profile compared to pure polylactide and polyamide 11.
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spelling pubmed-100530062023-03-30 Polyamide 11 Composites Reinforced with Diatomite Biofiller—Mechanical, Rheological and Crystallization Properties Dobrosielska, Marta Dobrucka, Renata Brząkalski, Dariusz Kozera, Paulina Martyła, Agnieszka Gabriel, Ewa Kurzydłowski, Krzysztof J. Przekop, Robert E. Polymers (Basel) Article Amorphic diatomaceous earth is derived from natural sources, and polyamide 11 (PA11) is produced from materials of natural origin. Both of these materials show a low harmfulness to the environment and a reduced carbon footprint. This is why the combination of these two constituents is beneficial not only to improve the physicochemical and mechanical properties of polyamide 11 but also to produce a biocomposite. For the purpose of this paper, the test biocomposite was produced by combining polyamide 11, as well as basic and pre-fractionated diatomaceous earth, which had been subjected to silanization. The produced composites were used to carry out rheological (melt flow rate-MFR), mechanical (tensile strength, bending strength, impact strength), crystallographic (X-ray Diffraction-XRD), thermal and thermo-mechanical (differential scanning calorimetry–DSC, dynamic mechanical thermal analysis–DMTA) analyses, as well as a study of hydrophobic–hydrophilic properties of the material surface (wetting angle) and imaging of the surface of the composites and the fractured specimens. The tests showed that the additive 3-aminopropyltriethoxysilane (APTES) acted as an agent that improved the elasticity of composites and the melt flow rate. In addition, the produced composites showed a hydrophilic surface profile compared to pure polylactide and polyamide 11. MDPI 2023-03-21 /pmc/articles/PMC10053006/ /pubmed/36987343 http://dx.doi.org/10.3390/polym15061563 Text en © 2023 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
Dobrosielska, Marta
Dobrucka, Renata
Brząkalski, Dariusz
Kozera, Paulina
Martyła, Agnieszka
Gabriel, Ewa
Kurzydłowski, Krzysztof J.
Przekop, Robert E.
Polyamide 11 Composites Reinforced with Diatomite Biofiller—Mechanical, Rheological and Crystallization Properties
title Polyamide 11 Composites Reinforced with Diatomite Biofiller—Mechanical, Rheological and Crystallization Properties
title_full Polyamide 11 Composites Reinforced with Diatomite Biofiller—Mechanical, Rheological and Crystallization Properties
title_fullStr Polyamide 11 Composites Reinforced with Diatomite Biofiller—Mechanical, Rheological and Crystallization Properties
title_full_unstemmed Polyamide 11 Composites Reinforced with Diatomite Biofiller—Mechanical, Rheological and Crystallization Properties
title_short Polyamide 11 Composites Reinforced with Diatomite Biofiller—Mechanical, Rheological and Crystallization Properties
title_sort polyamide 11 composites reinforced with diatomite biofiller—mechanical, rheological and crystallization properties
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10053006/
https://www.ncbi.nlm.nih.gov/pubmed/36987343
http://dx.doi.org/10.3390/polym15061563
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