Insights into Nano-Scale Physical and Mechanical Properties of Epoxy/Boehmite Nanocomposite Using Different AFM Modes

Understanding the interaction between nanoparticles and the matrix and the properties of interphase is crucial to predict the macroscopic properties of a nanocomposite system. Here, we investigate the interaction between boehmite nanoparticles (BNPs) and epoxy using different atomic force microscopy...

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Main Authors: Media Ghasem Zadeh Khorasani, Dorothee Silbernagl, Daniel Platz, Heinz Sturm
Format: Article
Language:English
Published: MDPI AG 2019-02-01
Series:Polymers
Subjects:
Online Access:https://www.mdpi.com/2073-4360/11/2/235
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spelling doaj-5771a20fb35a44ac87c0166c7796fffa2020-11-25T00:02:45ZengMDPI AGPolymers2073-43602019-02-0111223510.3390/polym11020235polym11020235Insights into Nano-Scale Physical and Mechanical Properties of Epoxy/Boehmite Nanocomposite Using Different AFM ModesMedia Ghasem Zadeh Khorasani0Dorothee Silbernagl1Daniel Platz2Heinz Sturm3Bundesanstalt für Materialforschung und -prüfung (BAM), Div. 6.6, D-12205 Berlin, GermanyBundesanstalt für Materialforschung und -prüfung (BAM), Div. 6.6, D-12205 Berlin, GermanyTU Wien, Institute of Sensor and Actuator Systems, A-1040 Vienna, AustriaBundesanstalt für Materialforschung und -prüfung (BAM), Div. 6.6, D-12205 Berlin, GermanyUnderstanding the interaction between nanoparticles and the matrix and the properties of interphase is crucial to predict the macroscopic properties of a nanocomposite system. Here, we investigate the interaction between boehmite nanoparticles (BNPs) and epoxy using different atomic force microscopy (AFM) approaches. We demonstrate benefits of using multifrequency intermodulation AFM (ImAFM) to obtain information about conservative, dissipative and van der Waals tip-surface forces and probing local properties of nanoparticles, matrix and the interphase. We utilize scanning kelvin probe microscopy (SKPM) to probe surface potential as a tool to visualize material contrast with a physical parameter, which is independent from the mechanics of the surface. Combining the information from ImAFM stiffness and SKPM surface potential results in a precise characterization of interfacial region, demonstrating that the interphase is softer than epoxy and boehmite nanoparticles. Further, we investigated the effect of boehmite nanoparticles on the bulk properties of epoxy matrix. ImAFM stiffness maps revealed the significant stiffening effect of boehmite nanoparticles on anhydride-cured epoxy matrix. The energy dissipation of epoxy matrix locally measured by ImAFM shows a considerable increase compared to that of neat epoxy. These measurements suggest a substantial alteration of epoxy structure induced by the presence of boehmite.https://www.mdpi.com/2073-4360/11/2/235nanomechanical propertiesboehmiteepoxy nanocompositesatomic force microscopyintermodulationinterphase
collection DOAJ
language English
format Article
sources DOAJ
author Media Ghasem Zadeh Khorasani
Dorothee Silbernagl
Daniel Platz
Heinz Sturm
spellingShingle Media Ghasem Zadeh Khorasani
Dorothee Silbernagl
Daniel Platz
Heinz Sturm
Insights into Nano-Scale Physical and Mechanical Properties of Epoxy/Boehmite Nanocomposite Using Different AFM Modes
Polymers
nanomechanical properties
boehmite
epoxy nanocomposites
atomic force microscopy
intermodulation
interphase
author_facet Media Ghasem Zadeh Khorasani
Dorothee Silbernagl
Daniel Platz
Heinz Sturm
author_sort Media Ghasem Zadeh Khorasani
title Insights into Nano-Scale Physical and Mechanical Properties of Epoxy/Boehmite Nanocomposite Using Different AFM Modes
title_short Insights into Nano-Scale Physical and Mechanical Properties of Epoxy/Boehmite Nanocomposite Using Different AFM Modes
title_full Insights into Nano-Scale Physical and Mechanical Properties of Epoxy/Boehmite Nanocomposite Using Different AFM Modes
title_fullStr Insights into Nano-Scale Physical and Mechanical Properties of Epoxy/Boehmite Nanocomposite Using Different AFM Modes
title_full_unstemmed Insights into Nano-Scale Physical and Mechanical Properties of Epoxy/Boehmite Nanocomposite Using Different AFM Modes
title_sort insights into nano-scale physical and mechanical properties of epoxy/boehmite nanocomposite using different afm modes
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2019-02-01
description Understanding the interaction between nanoparticles and the matrix and the properties of interphase is crucial to predict the macroscopic properties of a nanocomposite system. Here, we investigate the interaction between boehmite nanoparticles (BNPs) and epoxy using different atomic force microscopy (AFM) approaches. We demonstrate benefits of using multifrequency intermodulation AFM (ImAFM) to obtain information about conservative, dissipative and van der Waals tip-surface forces and probing local properties of nanoparticles, matrix and the interphase. We utilize scanning kelvin probe microscopy (SKPM) to probe surface potential as a tool to visualize material contrast with a physical parameter, which is independent from the mechanics of the surface. Combining the information from ImAFM stiffness and SKPM surface potential results in a precise characterization of interfacial region, demonstrating that the interphase is softer than epoxy and boehmite nanoparticles. Further, we investigated the effect of boehmite nanoparticles on the bulk properties of epoxy matrix. ImAFM stiffness maps revealed the significant stiffening effect of boehmite nanoparticles on anhydride-cured epoxy matrix. The energy dissipation of epoxy matrix locally measured by ImAFM shows a considerable increase compared to that of neat epoxy. These measurements suggest a substantial alteration of epoxy structure induced by the presence of boehmite.
topic nanomechanical properties
boehmite
epoxy nanocomposites
atomic force microscopy
intermodulation
interphase
url https://www.mdpi.com/2073-4360/11/2/235
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