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Synthesis of an Addition-Crosslinkable, Silicon-Modified Polyolefin via Reactive Extrusion Monitored by In-Line Raman Spectroscopy

We present the modification of ethylene-propylene rubber (EPM) with vinyltetra-methydisiloxane (VTMDS) via reactive extrusion to create a new silicone-based material with the potential for high-performance applications in the automotive, industrial and biomedical sectors. The radical-initiated modif...

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Autores principales: Ulitzsch, Steffen, Bäuerle, Tim, Stefanakis, Mona, Brecht, Marc, Chassé, Thomas, Lorenz, Günter, Kandelbauer, Andreas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8070583/
https://www.ncbi.nlm.nih.gov/pubmed/33921316
http://dx.doi.org/10.3390/polym13081246
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author Ulitzsch, Steffen
Bäuerle, Tim
Stefanakis, Mona
Brecht, Marc
Chassé, Thomas
Lorenz, Günter
Kandelbauer, Andreas
author_facet Ulitzsch, Steffen
Bäuerle, Tim
Stefanakis, Mona
Brecht, Marc
Chassé, Thomas
Lorenz, Günter
Kandelbauer, Andreas
author_sort Ulitzsch, Steffen
collection PubMed
description We present the modification of ethylene-propylene rubber (EPM) with vinyltetra-methydisiloxane (VTMDS) via reactive extrusion to create a new silicone-based material with the potential for high-performance applications in the automotive, industrial and biomedical sectors. The radical-initiated modification is achieved with a peroxide catalyst starting the grafting reaction. The preparation process of the VTMDS-grafted EPM was systematically investigated using process analytical technology (in-line Raman spectroscopy) and the statistical design of experiments (DoE). By applying an orthogonal factorial array based on a face-centered central composite experimental design, the identification, quantification and mathematical modeling of the effects of the process factors on the grafting result were undertaken. Based on response surface models, process windows were defined that yield high grafting degrees and good grafting efficiency in terms of grafting agent utilization. To control the grafting process in terms of grafting degree and grafting efficiency, the chemical changes taking place during the modification procedure in the extruder were observed in real-time using a spectroscopic in-line Raman probe which was directly inserted into the extruder. Successful grafting of the EPM was validated in the final product by (1)H-NMR and FTIR spectroscopy.
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spelling pubmed-80705832021-04-26 Synthesis of an Addition-Crosslinkable, Silicon-Modified Polyolefin via Reactive Extrusion Monitored by In-Line Raman Spectroscopy Ulitzsch, Steffen Bäuerle, Tim Stefanakis, Mona Brecht, Marc Chassé, Thomas Lorenz, Günter Kandelbauer, Andreas Polymers (Basel) Article We present the modification of ethylene-propylene rubber (EPM) with vinyltetra-methydisiloxane (VTMDS) via reactive extrusion to create a new silicone-based material with the potential for high-performance applications in the automotive, industrial and biomedical sectors. The radical-initiated modification is achieved with a peroxide catalyst starting the grafting reaction. The preparation process of the VTMDS-grafted EPM was systematically investigated using process analytical technology (in-line Raman spectroscopy) and the statistical design of experiments (DoE). By applying an orthogonal factorial array based on a face-centered central composite experimental design, the identification, quantification and mathematical modeling of the effects of the process factors on the grafting result were undertaken. Based on response surface models, process windows were defined that yield high grafting degrees and good grafting efficiency in terms of grafting agent utilization. To control the grafting process in terms of grafting degree and grafting efficiency, the chemical changes taking place during the modification procedure in the extruder were observed in real-time using a spectroscopic in-line Raman probe which was directly inserted into the extruder. Successful grafting of the EPM was validated in the final product by (1)H-NMR and FTIR spectroscopy. MDPI 2021-04-12 /pmc/articles/PMC8070583/ /pubmed/33921316 http://dx.doi.org/10.3390/polym13081246 Text en © 2021 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
Ulitzsch, Steffen
Bäuerle, Tim
Stefanakis, Mona
Brecht, Marc
Chassé, Thomas
Lorenz, Günter
Kandelbauer, Andreas
Synthesis of an Addition-Crosslinkable, Silicon-Modified Polyolefin via Reactive Extrusion Monitored by In-Line Raman Spectroscopy
title Synthesis of an Addition-Crosslinkable, Silicon-Modified Polyolefin via Reactive Extrusion Monitored by In-Line Raman Spectroscopy
title_full Synthesis of an Addition-Crosslinkable, Silicon-Modified Polyolefin via Reactive Extrusion Monitored by In-Line Raman Spectroscopy
title_fullStr Synthesis of an Addition-Crosslinkable, Silicon-Modified Polyolefin via Reactive Extrusion Monitored by In-Line Raman Spectroscopy
title_full_unstemmed Synthesis of an Addition-Crosslinkable, Silicon-Modified Polyolefin via Reactive Extrusion Monitored by In-Line Raman Spectroscopy
title_short Synthesis of an Addition-Crosslinkable, Silicon-Modified Polyolefin via Reactive Extrusion Monitored by In-Line Raman Spectroscopy
title_sort synthesis of an addition-crosslinkable, silicon-modified polyolefin via reactive extrusion monitored by in-line raman spectroscopy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8070583/
https://www.ncbi.nlm.nih.gov/pubmed/33921316
http://dx.doi.org/10.3390/polym13081246
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