Plasma deposition of silver nanoparticles onto poly(ethylene terephthalate) surfaces for the preparation of antimicrobial materials

被引:0
作者
Hanène Salmi-Mani
Grégory Balthazar
Christophe J. Atkins
Caroline Aymes-Chodur
Patrick Ribot
Gabriel Terreros
Nadine Barroca-Aubry
Christophe Regeard
Philippe Roger
机构
[1] Université Paris-Saclay,Institut de Chimie Moléculaire et des Matériaux d’Orsay (ICMMO), Equipe Synthèse de Molécules et de Macromolécules pour le Vivant et l’Environnement (SM2ViE), CNRS UMR 8182
[2] Université Paris-Saclay,Institute for Integrative Biology of the Cell (I2BC), CEA, CNRS
[3] University of Warwick,undefined
来源
Journal of Coatings Technology and Research | 2023年 / 20卷
关键词
Highly performing antibacterial poly (ethylene terephthalate) (PET) surfaces; Microwave plasma activation; Thiol immobilization; Silver nanoparticles photogeneration; Self-assembled monolayers; Antibacterial coatings;
D O I
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中图分类号
学科分类号
摘要
Poly(ethylene terephthalate) (PET) films were surface-modified according to microwave plasma activation allowing for dithiol functions grafting (1,6-hexanedithiol) in order to fabricate self-assembled photogenerated silver nanoparticles monolayers. The present study was carried out in constant discharge power conditions and the impact of the plasma treatment on PET wettability properties were reported. PET material modifications were characterized at various stages of the process: plasma activation, dithiol functionalization, and nanosilver grafting according to several experimental techniques: water contact angle measurements and X-ray photoelectron spectroscopy (XPS). The surface topography was studied by atomic force microscopy (AFM). Finally, antibacterial properties of PET material including silver nanoparticles were evaluated to determine the probability to reduce the surface bacterial adhesion of Staphylococcus aureus strain selected as pathogenic bacteria model. Surface grafted with silver nanoparticles was found to be particularly reactive and led to an inhibition of S. aureus adhesion around 96.2% in comparison with the unmodified PET material.
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页码:1395 / 1405
页数:10
相关论文
共 362 条
[1]  
Bach C(2012)Chemical Compounds and Toxicological Assessments of Drinking Water Stored in Polyethylene Terephthalate (PET) Bottles: A Source of Controversy Reviewed Water Res. 46 571-583
[2]  
Dauchy X(2003)Recent Innovations in Barrier Technologies for Plastic Packaging? A Review Packag. Technol. Sci. 16 149-158
[3]  
Chagnon M-C(2000)Surface Characterization and In Vitro Blood Compatibility of Poly(ethylene terephthalate) Immobilized with Insulin and/or Heparin Using Plasma Glow Discharge Biomaterials 21 121-130
[4]  
Etienne S(2005)Surface Characterization and Blood Compatibility of Poly(ethylene terephthalate) Modified by Plasma Surface Grafting Surf. Coat. Technol. 196 307-311
[5]  
Lange J(1992)Preparation of 2-Methacryloyloxyethyl Phosphorylcholine Copolymers with Alkyl Methacrylates and Their Blood Compatibility Polym. J. 24 1259-1269
[6]  
Wyser Y(1978)Infections Related to Medical Devices Ann. Int. Med. 89 764-769
[7]  
Kim YJ(2005)Infections Associated with Medical Devices Drugs 65 179-214
[8]  
Kang I-K(2009)Antibacterial Surfaces for Biomedical Devices Expert Rev. Med. Devices 6 553-567
[9]  
Huh MW(2020)The Mechanisms and the Applications of Antibacterial Polymers in Surface Modification on Medical Devices Front. Bioeng. Biotechnol. 8 910-544
[10]  
Yoon S-C(2021)Antimicrobial UV Curable Wood Coatings Based on Citric Acid Pigm. Resin Technol. 50 533-2778