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Air Filter Devices Including Nonwoven Meshes of Electrospun Recombinant Spider Silk Proteins
Published on: May 8, 2013
Scalable antimicrobial air filters: polypropylene/rose bengal melt-blown nonwoven filters
Sahar Kalani1, Muhammad Shahidul Islam2, Jiaqing Li3
1Department of Chemical Engineering, Institute of Polymer Research, Waterloo Institute of Nanotechnology, University of Waterloo, 200 University Avenue West, Waterloo, Ontario, N2L 3G1, Canada; The BIG-nano Corporation, Cambridge, Ontario, Canada.
Abstract:
The COVID-19 pandemic has highlighted the limitations of conventional face masks, which primarily function as aerosol physical filters without inherent antibacterial or antiviral properties. Surgical masks, which depend on electrostatic filtration, lose their efficacy as these charges dissipate within a few hours of use. This study aims to address these shortcomings by developing advanced melt-blown nonwoven filters using polypropylene (PP) and Rose bengal (RB) as a photosensitizer. The impact of varying processing temperatures during the fabrication of melt-blown nonwoven's fiber morphology, filtration efficiency, and antibacterial properties was systematically investigated. The incorporation of RB is intended to enhance antibacterial activity. Results show that processing temperature significantly influences fiber diameter, with optimized filters demonstrating superior antibacterial performance (>99 %), particulate filtration efficiency (PFE) of 63 % compared to conventional masks. These filters with advanced functionality present promising improvements in antimicrobial protection from the ambient environment and durability, contributing to the development of more effective and long-lasting personal protective equipment (PPE).
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