Antibiocorrosive Hybrid Materials with High Durability

2021;
: pp. 500–511
1
Department of Medical Chemistry, Faculty of Pharmacy, Tbilisi Medical University, Institute of Inorganic-Organic Hybrid Compounds and Nontraditional Materials, Faculty of Exact and Natural Sciences, Ivane Javahishvili University, Laboratory of Advanced Polymers & Optimized Materials (LAPOM), Department of Materials Science and Engineering and Department of Physics, University of North Texas
2
Department of Materials Science and Engineering, University of North Texas
3
Laboratory of Advanced Polymers & Optimized Materials (LAPOM), Department of Materials Science and Engineering and Department of Physics, University of North Texas
4
Department of Medical Chemistry, Faculty of Pharmacy, Tbilisi Medical University
5
Department of Medical Chemistry, Faculty of Pharmacy, Tbilisi Medical University
6
College of Mechanics and Robotics, AGH University of Science and Technology
7
Institute of Inorganic-Organic Hybrid Compounds and Nontraditional Materials, Faculty of Exact and Natural Sciences, Ivane Javahishvili University

We have developed novel antibiocorrosive multifunctional hybrid materials based on functionalizedperfluoroalkylmethacrylate copolymerswith epoxy groups in main chainsand selected biologically active compounds.The hybrids are transparent, showgood adhesion to various surfaces (plastic, wood),high viscoelastic recovery in scratch testing,low wear rates and glass transitions above 323 K. No phase separation is seen in scanning electron micrography. Enhanced mechanical strength and good abrasion resistance are advantages for uses of our protective and antibiocorrosive coatings in various applications including protection of cultural heritage.

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