Modification of Functional Properties of Whey Protein Isolate Nanocomposite Films and Coatings with Nanoclays

Whey protein based films have received considerable attention to be used for environment friendly packaging applications. However, such biopolymers are prevented for use in commercial packaging due to their limited mechanical and barrier performance. The addition of nanofillers is a common method to...

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Main Authors: Kerstin Müller, Marius Jesdinszki, Markus Schmid
Format: Article
Language:English
Published: Hindawi Limited 2017-01-01
Series:Journal of Nanomaterials
Online Access:http://dx.doi.org/10.1155/2017/6039192
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spelling doaj-8d19c07e4c7c4bf0a41e184dfbf565952020-11-24T20:52:40ZengHindawi LimitedJournal of Nanomaterials1687-41101687-41292017-01-01201710.1155/2017/60391926039192Modification of Functional Properties of Whey Protein Isolate Nanocomposite Films and Coatings with NanoclaysKerstin Müller0Marius Jesdinszki1Markus Schmid2Materials Development, Fraunhofer Institute for Process Engineering and Packaging IVV, Freising, GermanyMaterials Development, Fraunhofer Institute for Process Engineering and Packaging IVV, Freising, GermanyMaterials Development, Fraunhofer Institute for Process Engineering and Packaging IVV, Freising, GermanyWhey protein based films have received considerable attention to be used for environment friendly packaging applications. However, such biopolymers are prevented for use in commercial packaging due to their limited mechanical and barrier performance. The addition of nanofillers is a common method to overcome those drawbacks of biopolymers. Whey protein isolate (WPI) based nanocomposite cast films and coatings were produced using montmorillonite and vermiculite clay as nanofiller in different concentrations. Uniform distribution of filler within the polymeric matrix was confirmed by scanning electron microscopy. Mechanical properties such as tensile strength as well as Young’s modulus were increased after increasing the filler content, while elongation at break values decreased. All samples showed weak barrier potential against water vapor. Nanoclay incorporation, however, reduced water vapor transmission rates by approximately 50%. The oxygen barrier performance was improved for all nanocomposites. Results also indicated proportionality with the filler ratio according to applied models. The highest barrier improvement factors (BIF) were greater than five for the cast films and even greater than sixteen for the coatings. Developed WPI-based composites depicted nanoenhanced material properties representing a promising alternative to fossil-based packaging films.http://dx.doi.org/10.1155/2017/6039192
collection DOAJ
language English
format Article
sources DOAJ
author Kerstin Müller
Marius Jesdinszki
Markus Schmid
spellingShingle Kerstin Müller
Marius Jesdinszki
Markus Schmid
Modification of Functional Properties of Whey Protein Isolate Nanocomposite Films and Coatings with Nanoclays
Journal of Nanomaterials
author_facet Kerstin Müller
Marius Jesdinszki
Markus Schmid
author_sort Kerstin Müller
title Modification of Functional Properties of Whey Protein Isolate Nanocomposite Films and Coatings with Nanoclays
title_short Modification of Functional Properties of Whey Protein Isolate Nanocomposite Films and Coatings with Nanoclays
title_full Modification of Functional Properties of Whey Protein Isolate Nanocomposite Films and Coatings with Nanoclays
title_fullStr Modification of Functional Properties of Whey Protein Isolate Nanocomposite Films and Coatings with Nanoclays
title_full_unstemmed Modification of Functional Properties of Whey Protein Isolate Nanocomposite Films and Coatings with Nanoclays
title_sort modification of functional properties of whey protein isolate nanocomposite films and coatings with nanoclays
publisher Hindawi Limited
series Journal of Nanomaterials
issn 1687-4110
1687-4129
publishDate 2017-01-01
description Whey protein based films have received considerable attention to be used for environment friendly packaging applications. However, such biopolymers are prevented for use in commercial packaging due to their limited mechanical and barrier performance. The addition of nanofillers is a common method to overcome those drawbacks of biopolymers. Whey protein isolate (WPI) based nanocomposite cast films and coatings were produced using montmorillonite and vermiculite clay as nanofiller in different concentrations. Uniform distribution of filler within the polymeric matrix was confirmed by scanning electron microscopy. Mechanical properties such as tensile strength as well as Young’s modulus were increased after increasing the filler content, while elongation at break values decreased. All samples showed weak barrier potential against water vapor. Nanoclay incorporation, however, reduced water vapor transmission rates by approximately 50%. The oxygen barrier performance was improved for all nanocomposites. Results also indicated proportionality with the filler ratio according to applied models. The highest barrier improvement factors (BIF) were greater than five for the cast films and even greater than sixteen for the coatings. Developed WPI-based composites depicted nanoenhanced material properties representing a promising alternative to fossil-based packaging films.
url http://dx.doi.org/10.1155/2017/6039192
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