Antibacterial and Biocompatible Polyethylene Composites with Hybrid Clay Nanofillers

Author:

Klecandová Lenka1ORCID,Nakonieczny Damian S.2ORCID,Reli Magda3,Simha Martynková Gražyna4ORCID

Affiliation:

1. IT4Innovations, VSB–Technical University of Ostrava, 17 Listopadu 2172/15, 708 00 Ostrava-Poruba, Czech Republic

2. Department of Biomedical Engineering, Silesian University of Technology, Akademicka 2A, Młyńska 8, 44-100 Gliwice, Poland

3. Intitute of Environmental Technologies, CEET, VŠB—Technical University of Ostrava, 17 Listopadu 2172/15, 708 00 Ostrava-Poruba, Czech Republic

4. Nanotechnology Centre, CEET, VSB—Technical University of Ostrava, 17 Listopadu 2172/15, 708 00 Ostrava-Poruba, Czech Republic

Abstract

Low-density polyethylene is one of the basic polymers used in medicine for a variety of purposes; so, the relevant improvements in functional properties are discussed here, making it safer to use as devices or implants during surgery or injury. The objective of the laboratory-prepared material was to study the antimicrobial and biocompatible properties of low-density polyethylene composites with 3 wt. % hybrid nanoclay filler. We found that the antimicrobial activity was mainly related to the filler, i.e., the hybrid type, where inorganic clay minerals, vermiculite or montmorillonite, were intercalated with organic chlorhexidine diacetate and subsequently decorated with Ca-deficient hydroxyapatite. After fusion of the hybrid nanofiller with polyethylene, intense exfoliation of the clay layers occurred. This phenomenon was confirmed by the analysis of the X-ray diffraction patterns of the composite, where the original basal peak of the clays decreased or completely disappeared, and the optimal distribution of the filler was observed using the transmission mode of light microscopy. Functional property testing showed that the composites have good antibacterial activity against Staphylococcus aureus, and the biocompatibility prediction demonstrated the formation of Ca- and P-containing particles through an in vitro experiment, thus applicable for medical use.

Funder

IT4 Innovations National Supercomputing Center Path to Exascale

Czech Science Foundation Grant

Publisher

MDPI AG

Subject

General Materials Science

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