Electrospun polyvinyl alcohol nanofibers designed to absorb volatile organic compounds and eliminate pathogens. Compatible with existing HEPA filtration systems, the high-surface-area material can be loaded with catalysts and antibiotics for enhanced air purification in medical, industrial, and indoor environments.
This technology offers a versatile nanofiber-based air filtration solution built from electrospun polyvinyl alcohol nanofibers (PVA-NFs). The nanofibers are engineered to absorb volatile organic compounds (VOCs) through both physisorption and chemisorption while simultaneously delivering antimicrobial action through embedded drug molecules. Designed for compatibility with existing HEPA filtration equipment, the material can be tuned in pore size and thickness to maintain airflow while capturing airborne contaminants.
The core value proposition is a single filtration medium that addresses two persistent air quality challenges: chemical odor and vapor hazards from VOCs, and biological contamination from airborne pathogens. Potential applications include surgical masks that neutralize the strong odor of methyl methacrylate used in operating rooms, industrial air filters for manufacturing environments, and indoor air quality systems for commercial and residential buildings.
Material composition and fabrication:
Filtration performance:
Pathogen elimination:
Validation status:
The technology is currently at an early-to-mid stage of development. Proof-of-concept has been achieved for VOC absorption (demonstrated with methyl methacrylate via infrared analysis) and for antibiotic embedding (erythromycin). The research team is preparing systematic validation studies that will measure VOC absorption efficiency in both solution and vapor phases, characterize absorption kinetics, and optimize nanofiber thickness and pore size for airflow performance.
Planned analytical techniques include gas chromatography, infrared spectroscopy, nuclear magnetic resonance spectroscopy, spectrophotometry, scanning electron microscopy, elemental analysis, and thermogravimetric analysis. Catalyst incorporation and pathogen-elimination performance will be evaluated in parallel. The active collaboration with a clinical partner for surgical mask development provides a defined pathway toward application-specific validation and potential pilot deployment.
Lawrence Technological University is a private STEM- and design-focused university of a few thousand students with a hands-on, industry-centric culture. Based in Southfield within the Detroit metro manufacturing and mobility hub, LTU connects companies to faculty expertise, student talent, and shared prototyping spaces for rapid development. A structured co-op and internship model, plus professional studios and capstone collaborations, streamlines applied engagements and recruiting. Research is supported by competitive federal and state funding, including National Science Foundation awards and industry contracts. A dedicated technology transfer office supports IP strategy, prototyping, supplier introductions, and commercialization.