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Poly(hydromethylsiloxane) Networks Functionalized by N-allylaniline
Anita Wysopal1, Maria Owińska1, Ewa Stodolak-Zych1
1Faculty of Materials Science and Ceramics, AGH University of Krakow, 30-059 Kraków, Poland.
New polymeric biocides were developed using poly(hydromethylsiloxane) (PHMS) functionalized with N-allylaniline. These materials show promising antimicrobial activity against bacteria, with effectiveness depending on their structure and modification level.
Area of Science:
- Polymer Chemistry
- Materials Science
- Microbiology
Background:
- Pathogen resistance to antimicrobials necessitates novel biocidal materials.
- Polymers with biocidal moieties, such as amino and ammonium groups, offer a promising strategy.
- Poly(hydromethylsiloxane) (PHMS) is explored as a versatile polymer backbone for developing new biocides.
Purpose of the Study:
- To synthesize and characterize non-porous and porous PHMS networks.
- To post-functionalize these networks with N-allylaniline (Naa) to introduce biocidal properties.
- To evaluate the antimicrobial activity of the modified polymers against Gram-positive and Gram-negative bacteria.
Main Methods:
- Preparation of non-porous PHMS via bulk cross-linking and porous PHMS via high-internal-phase emulsion (HIPE).
- Cross-linking using divinyldisiloxane (M2Vi) or tetravinyltetrasiloxane (D4Vi).
- Post-functionalization with N-allylaniline (Naa) and subsequent quaternization to ammonium groups.
Main Results:
- Successful synthesis of non-porous and porous PHMS networks with distinct microstructures.
- N-allylaniline functionalization was more efficient in non-porous networks due to higher Si-H content.
- Antimicrobial activity against *S. aureus* and *E. coli* was observed and correlated with functionalization degree, cross-linking, and microstructure.
Conclusions:
- PHMS-based polymers can be effectively functionalized to create novel biocidal materials.
- Material microstructure and functionalization strategy significantly influence antimicrobial efficacy.
- These findings support the development of advanced polymeric biocides to combat antimicrobial resistance.
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