In-Line Rheo-Optical Investigation of the Dispersion of Organoclay in a Polymer Matrix during Twin-Screw Compounding

The dispersion mechanisms in a clay-based polymer nanocomposite (CPNC) during twin-screw extrusion are studied by in-situ rheo-optical techniques, which relate the CPNC morphology with its viscosity. This methodology avoids the problems associated with post extrusion structural rearrangement. The po...

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Main Authors: Paulo F. Teixeira, José A. Covas, Loïc Hilliou
Format: Article
Language:English
Published: MDPI AG 2021-06-01
Series:Polymers
Subjects:
Online Access:https://www.mdpi.com/2073-4360/13/13/2128
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spelling doaj-712bbfce56e0441bba919cd9388d9a3f2021-07-15T15:43:38ZengMDPI AGPolymers2073-43602021-06-01132128212810.3390/polym13132128In-Line Rheo-Optical Investigation of the Dispersion of Organoclay in a Polymer Matrix during Twin-Screw CompoundingPaulo F. Teixeira0José A. Covas1Loïc Hilliou2Institute for Polymers and Composites, University of Minho, 4800-058 Guimarães, PortugalInstitute for Polymers and Composites, University of Minho, 4800-058 Guimarães, PortugalInstitute for Polymers and Composites, University of Minho, 4800-058 Guimarães, PortugalThe dispersion mechanisms in a clay-based polymer nanocomposite (CPNC) during twin-screw extrusion are studied by in-situ rheo-optical techniques, which relate the CPNC morphology with its viscosity. This methodology avoids the problems associated with post extrusion structural rearrangement. The polydimethylsiloxane (PDMS) matrix, which can be processed at ambient and low temperatures, is used to bypass any issues associated with thermal degradation. Local heating in the first part of the extruder allows testing of the usefulness of low matrix viscosity to enhance polymer intercalation before applying larger stresses for clay dispersion. The comparison of clay particle sizes measured in line with models for the kinetics of particle dispersion indicates that larger screw speeds promote the break-up of clay particles, whereas smaller screw speeds favor the erosion of the clay tactoids. Thus, different levels of clay dispersion are generated, which do not simply relate to a progressively better PDMS intercalation and higher clay exfoliation as screw speed is increased. Reducing the PDMS viscosity in the first mixing zone of the screw facilitates dispersion at lower screw speeds, but a complex interplay between stresses and residence times at larger screw speeds is observed. More importantly, the results underline that the use of larger stresses is inefficient per se in dispersing clay if sufficient time is not given for PDMS to intercalate the clay galleries and thus facilitate tactoid disruption or erosion.https://www.mdpi.com/2073-4360/13/13/2128organoclaypolymer nanocompositesextrusiondispersionrheo-opticsin-process monitoring
collection DOAJ
language English
format Article
sources DOAJ
author Paulo F. Teixeira
José A. Covas
Loïc Hilliou
spellingShingle Paulo F. Teixeira
José A. Covas
Loïc Hilliou
In-Line Rheo-Optical Investigation of the Dispersion of Organoclay in a Polymer Matrix during Twin-Screw Compounding
Polymers
organoclay
polymer nanocomposites
extrusion
dispersion
rheo-optics
in-process monitoring
author_facet Paulo F. Teixeira
José A. Covas
Loïc Hilliou
author_sort Paulo F. Teixeira
title In-Line Rheo-Optical Investigation of the Dispersion of Organoclay in a Polymer Matrix during Twin-Screw Compounding
title_short In-Line Rheo-Optical Investigation of the Dispersion of Organoclay in a Polymer Matrix during Twin-Screw Compounding
title_full In-Line Rheo-Optical Investigation of the Dispersion of Organoclay in a Polymer Matrix during Twin-Screw Compounding
title_fullStr In-Line Rheo-Optical Investigation of the Dispersion of Organoclay in a Polymer Matrix during Twin-Screw Compounding
title_full_unstemmed In-Line Rheo-Optical Investigation of the Dispersion of Organoclay in a Polymer Matrix during Twin-Screw Compounding
title_sort in-line rheo-optical investigation of the dispersion of organoclay in a polymer matrix during twin-screw compounding
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2021-06-01
description The dispersion mechanisms in a clay-based polymer nanocomposite (CPNC) during twin-screw extrusion are studied by in-situ rheo-optical techniques, which relate the CPNC morphology with its viscosity. This methodology avoids the problems associated with post extrusion structural rearrangement. The polydimethylsiloxane (PDMS) matrix, which can be processed at ambient and low temperatures, is used to bypass any issues associated with thermal degradation. Local heating in the first part of the extruder allows testing of the usefulness of low matrix viscosity to enhance polymer intercalation before applying larger stresses for clay dispersion. The comparison of clay particle sizes measured in line with models for the kinetics of particle dispersion indicates that larger screw speeds promote the break-up of clay particles, whereas smaller screw speeds favor the erosion of the clay tactoids. Thus, different levels of clay dispersion are generated, which do not simply relate to a progressively better PDMS intercalation and higher clay exfoliation as screw speed is increased. Reducing the PDMS viscosity in the first mixing zone of the screw facilitates dispersion at lower screw speeds, but a complex interplay between stresses and residence times at larger screw speeds is observed. More importantly, the results underline that the use of larger stresses is inefficient per se in dispersing clay if sufficient time is not given for PDMS to intercalate the clay galleries and thus facilitate tactoid disruption or erosion.
topic organoclay
polymer nanocomposites
extrusion
dispersion
rheo-optics
in-process monitoring
url https://www.mdpi.com/2073-4360/13/13/2128
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