Published July 2021 | Version v1
Journal article

New promising antimicrobial material based on thermoplastic polyurethane modified with polymeric biocide polyhexamethylene guanidine hydrochloride

  • 1. V. P. Kukhar Institute of Bioorganic Chemistry and Petrochemistry, National Academy of Science of Ukraine, 50, Kharkivske Shose, Kyiv, 02160 (Ukraine)
  • 2. Institut des Molécules et Matériaux Du Mans, UMR CNRS 6283, Le Mans Université, Avenue Olivier Messiaen, 72085, Le Mans Cedex 9 (France)
  • 3. Institute of Cell Biology and Genetic Engineering, National Academy of Science of Ukraine, 148 Academika Zabolotnoho Str., Kyiv, 03143 (Ukraine)
  • 4. Chuiko Institute of Surface Chemistry, National Academy of Science of Ukraine, 17, General Naumov Str., Kyiv, 03164 (Ukraine)
  • 5. Technical Center, National Academy of Sciences of Ukraine, 13, Pokrovska Str., Kyiv, 04070 (Ukraine)
  • 6. Institute of Macromolecular Chemistry, National Academy of Sciences of Ukraine, 48, Kharkivske Shose, Kyiv, 02160 (Ukraine)

Description

Highlights: • Commercial polyurethane Laripur was modified with polyhexamethylene guanidine hydrochloride. • Polyhexamethylene guanidine hydrochloride forms hydrogen bonds with polyurethane. • Polyurethane composites showed excellent antimicrobial efficacy at polymeric biocide content of 3%. • A gradual release of the polymeric biocide from polyurethane into a water medium has been established. New antimicrobial polymer composite based on commercial polyurethane (PU) Laripur®LPR9020 and polymeric biocide polyhexamethylene guanidine hydrochloride (PHMG-Cl) has been prepared by solvent casting method. Modified PU films containing from 1 to 4 wt% of PHMG-Cl were characterized in terms of mechanical, thermal and surface properties, biocide release behavior, as well as antibacterial activity against Gram-negative (Escherichia coli) and Gram-positive (Bacillus subtilis) bacterial strains. The results of mechanical testing indicate that the introduction of PHMG-Cl did not cause noticeable changes in the tensile strength of PU films, but improved their elasticity by at least 20–30%. The surface of PU/PHMG-Cl films was found to possess significantly higher hydrophobicity than neat polymer that is manifested in sharply increased water contact angle value from 72° for neat PU to 95° for PU/PHMG-Cl (2%). According to thermogravimetric analysis data, PU/PHMG-Cl composites are thermally stable to at least 300 °C which indicate their availability for melt processing by common methods. The results of differential scanning calorimetry showed reduction of both glass transition and melting temperatures of PU by more than 7 °C when contained only 1% of PHMG-Cl. Gradual release of polymeric biocide from modified PU films into water has been detected spectrophotometrically. The total biocide release ratio was found to be in the range from 29% to 48% after 50 hours immersion, depending on its content in polymer composite. PU/PHMG-Cl films showed much lower leaching rate into physiological saline solution compared to pure water (from 10% to 21% after 50 hours), which may be caused by poor solubility of polymeric biocide in sodium chloride solutions. The study of antibacterial activity of modified PU films using both disc agar diffusion and contact methods indicate high efficacy against tested microorganisms when contained 3% of polymeric biocide. So, this approach, based on the modification of PU resin with polymeric biocide PHMG-Cl, has been discussed in terms of potential medical applications when biocide release system or contact active material are necessary.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.matchemphys.2021.124682

Additional details

Identifiers

DOI
10.1016/j.matchemphys.2021.124682;
PII
S025405842100465X;

Publishing Information

Journal Title
Materials Chemistry and Physics (Print)
Journal Volume
267
Journal Page Range
vp.
ISSN
0254-0584
CODEN
MCHPDR

Optional Information

Copyright
Copyright (c) 2021 Elsevier B.V. All rights reserved.