Mechanically robust nanofiber aerogels for VOC and pathogen removal from air

Technology
Conceptual
University

Scalable, self-supported nanofibrous aerogels made from polymer-titania hybrid fibers for high-efficiency air filtration. The material combines mechanical resilience with photocatalytic antibacterial activity and VOC capture, addressing limitations of conventional air filters that lose efficiency over time.

Overview

Rising air pollution and pathogen concerns have exposed the limitations of conventional air filters, which often lose efficiency over time. This solution addresses that gap with a next-generation air purification material: low-density, self-supported nanofibrous aerogels (NFAs) fabricated from polymer-titania hybrid nanofibers. The hybrid composition delivers mechanical flexibility from the polymer component and photocatalytic functionality from titania, enabling the aerogel to capture volatile organic compounds (VOCs) and deactivate common bacteria such as Escherichia coli and Salmonella enterica. The result is a durable, high-efficiency filtration platform suited for indoor air quality, healthcare environments, and industrial emission control.

Technical specifications

Material composition:

  • Polymer-titania hybrid nanofibers produced via sol-gel electrospinning
  • Polyvinylpyrrolidone (PVP) provides mechanical flexibility and entanglement-based structural integrity
  • Sol-gel derived TiO2 imparts photocatalytic activity for pathogen deactivation and VOC decomposition
  • Hierarchical porosity and low density enable effective capture of airborne contaminants

Performance characteristics:

  • Withstands over 50 stress-strain cycles at 50% strain without structural failure
  • Thermally stable under typical filtration operating conditions
  • Photocatalytic destruction of bacteria upon light exposure
  • Capture and decomposition of VOCs into harmless byproducts
  • Scalable fabrication through freeze-drying of chopped nanofiber dispersions

Processing flexibility:

  • Composition and processing parameters tunable to balance mechanical robustness and filtration efficiency
  • Compatible with a range of polymer systems beyond PVP for further optimization
Technology readiness level

The technology is at an early-to-mid stage of development. Proof-of-concept NFAs have been successfully fabricated and characterized, with preliminary validation confirming mechanical resilience, thermal stability, photocatalytic antibacterial activity, and VOC capture capability. Future work will explore additional polymer compositions, optimize processing parameters, and conduct systematic bioassays and sorption experiments to identify the key attributes required for target air filter applications. The approach is built on established sol-gel electrospinning and aerogel fabrication expertise, supporting a clear path toward pilot-scale validation and pre-commercial readiness.


About North Carolina State University

North Carolina State University is a large, comprehensive public land‑grant research university in Raleigh. Its on‑campus research and technology park co‑locates corporate R&D groups, government partners, and faculty labs, enabling shared facilities, prototyping, and agile contracting. Located in North Carolina’s Research Triangle, partners tap a dense regional ecosystem while engaging through a statewide extension network and a mature co‑op program that deliver field deployment and workforce pipelines. Multiple pilot and demonstration facilities support scale‑up and validation toward pre‑commercial readiness. Research is supported by competitive funding from major federal agencies, including NSF, USDA, DOE, and DOD, and a dedicated technology transfer office with clear IP pathways helps accelerate commercialization.

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