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Short- and Long-Range Mechanical and Chemical Interphases Caused by Interaction of Boehmite (γ-AlOOH) with Anhydride-Cured Epoxy Resins

Understanding the interaction between boehmite and epoxy and the formation of their interphases with different mechanical and chemical structures is crucial to predict and optimize the properties of epoxy-boehmite nanocomposites. Probing the interfacial properties with atomic force microscopy (AFM)-...

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Autores principales: Ghasem Zadeh Khorasani, Media, Elert, Anna-Maria, Hodoroaba, Vasile-Dan, Agudo Jácome, Leonardo, Altmann, Korinna, Silbernagl, Dorothee, Sturm, Heinz
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6631262/
https://www.ncbi.nlm.nih.gov/pubmed/31167417
http://dx.doi.org/10.3390/nano9060853
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author Ghasem Zadeh Khorasani, Media
Elert, Anna-Maria
Hodoroaba, Vasile-Dan
Agudo Jácome, Leonardo
Altmann, Korinna
Silbernagl, Dorothee
Sturm, Heinz
author_facet Ghasem Zadeh Khorasani, Media
Elert, Anna-Maria
Hodoroaba, Vasile-Dan
Agudo Jácome, Leonardo
Altmann, Korinna
Silbernagl, Dorothee
Sturm, Heinz
author_sort Ghasem Zadeh Khorasani, Media
collection PubMed
description Understanding the interaction between boehmite and epoxy and the formation of their interphases with different mechanical and chemical structures is crucial to predict and optimize the properties of epoxy-boehmite nanocomposites. Probing the interfacial properties with atomic force microscopy (AFM)-based methods, especially particle-matrix long-range interactions, is challenging. This is due to size limitations of various analytical methods in resolving nanoparticles and their interphases, the overlap of interphases, and the effect of buried particles that prevent the accurate interphase property measurement. Here, we develop a layered model system in which the epoxy is cured in contact with a thin layer of hydrothermally synthesized boehmite. Different microscopy methods are employed to evaluate the interfacial properties. With intermodulation atomic force microscopy (ImAFM) and amplitude dependence force spectroscopy (ADFS), which contain information about stiffness, electrostatic, and van der Waals forces, a soft interphase was detected between the epoxy and boehmite. Surface potential maps obtained by scanning Kelvin probe microscopy (SKPM) revealed another interphase about one order of magnitude larger than the mechanical interphase. The AFM-infrared spectroscopy (AFM-IR) technique reveals that the soft interphase consists of unreacted curing agent. The long-range electrical interphase is attributed to the chemical alteration of the bulk epoxy and the formation of new absorption bands.
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spelling pubmed-66312622019-08-19 Short- and Long-Range Mechanical and Chemical Interphases Caused by Interaction of Boehmite (γ-AlOOH) with Anhydride-Cured Epoxy Resins Ghasem Zadeh Khorasani, Media Elert, Anna-Maria Hodoroaba, Vasile-Dan Agudo Jácome, Leonardo Altmann, Korinna Silbernagl, Dorothee Sturm, Heinz Nanomaterials (Basel) Article Understanding the interaction between boehmite and epoxy and the formation of their interphases with different mechanical and chemical structures is crucial to predict and optimize the properties of epoxy-boehmite nanocomposites. Probing the interfacial properties with atomic force microscopy (AFM)-based methods, especially particle-matrix long-range interactions, is challenging. This is due to size limitations of various analytical methods in resolving nanoparticles and their interphases, the overlap of interphases, and the effect of buried particles that prevent the accurate interphase property measurement. Here, we develop a layered model system in which the epoxy is cured in contact with a thin layer of hydrothermally synthesized boehmite. Different microscopy methods are employed to evaluate the interfacial properties. With intermodulation atomic force microscopy (ImAFM) and amplitude dependence force spectroscopy (ADFS), which contain information about stiffness, electrostatic, and van der Waals forces, a soft interphase was detected between the epoxy and boehmite. Surface potential maps obtained by scanning Kelvin probe microscopy (SKPM) revealed another interphase about one order of magnitude larger than the mechanical interphase. The AFM-infrared spectroscopy (AFM-IR) technique reveals that the soft interphase consists of unreacted curing agent. The long-range electrical interphase is attributed to the chemical alteration of the bulk epoxy and the formation of new absorption bands. MDPI 2019-06-04 /pmc/articles/PMC6631262/ /pubmed/31167417 http://dx.doi.org/10.3390/nano9060853 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ghasem Zadeh Khorasani, Media
Elert, Anna-Maria
Hodoroaba, Vasile-Dan
Agudo Jácome, Leonardo
Altmann, Korinna
Silbernagl, Dorothee
Sturm, Heinz
Short- and Long-Range Mechanical and Chemical Interphases Caused by Interaction of Boehmite (γ-AlOOH) with Anhydride-Cured Epoxy Resins
title Short- and Long-Range Mechanical and Chemical Interphases Caused by Interaction of Boehmite (γ-AlOOH) with Anhydride-Cured Epoxy Resins
title_full Short- and Long-Range Mechanical and Chemical Interphases Caused by Interaction of Boehmite (γ-AlOOH) with Anhydride-Cured Epoxy Resins
title_fullStr Short- and Long-Range Mechanical and Chemical Interphases Caused by Interaction of Boehmite (γ-AlOOH) with Anhydride-Cured Epoxy Resins
title_full_unstemmed Short- and Long-Range Mechanical and Chemical Interphases Caused by Interaction of Boehmite (γ-AlOOH) with Anhydride-Cured Epoxy Resins
title_short Short- and Long-Range Mechanical and Chemical Interphases Caused by Interaction of Boehmite (γ-AlOOH) with Anhydride-Cured Epoxy Resins
title_sort short- and long-range mechanical and chemical interphases caused by interaction of boehmite (γ-alooh) with anhydride-cured epoxy resins
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6631262/
https://www.ncbi.nlm.nih.gov/pubmed/31167417
http://dx.doi.org/10.3390/nano9060853
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