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Development of PECVD Migration Barrier Coatings Using Model Recyclates

Submitted:

03 September 2026

Posted:

04 September 2026

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Abstract
Ecological driven sustainability of plastic materials encounters a major challenge in eco-efficient mechanical recycling falling short of meeting the required quality and quantities of post-consumer-recyclates (PCR) in sensitive applications areas demanded by regulatory authorities. Remaining toxicological concerning residues of contaminants after mechanical recycling restrict the use in sensitive application areas. Addressing the integration of PCR into high demanding applications, such as food contact materials, this work investigates a novel technology for PCR product use by an innovative migration barrier development pathway of Si-based plasma enhanced chemical vapour deposition (PECVD) coatings on pre-contaminated polypropylene (PP) model PCR cups compliant with applicable regulatory frameworks including European Food Safety Authority (EFSA) authorization requirements. As a starting point for migration barrier development optimized oxygen transmission rate (OTR) barrier coatings for PCR cups were reproduced and transferred on virgin and model PCR PP-cups. The coating procedure consisted out of a pretreatment, applied organic adhesion interlayer SiOCH and inorganic functional barrier layer SiOx, where the functionality was related to the applied SiOx layer based on the barrier efficiency. Therefore, SiOx was varied in the migration barrier development to find a suitable process window and efficiently correlate the effects of process parameters on OTR before and after migration testing, mass loss of simulant and the reduction of migration of eight introduced contaminants in the model PCR cup using GC/MS. This work advanced the understanding of PECVD as migrations barriers under regulatory frameworks and reduced PCR matrix complexity in the analysis during development using model PCR cups.
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