Bioinspired artificial spider silk photocatalyst for the high-efficiency capture and inactivation of bacteria aerosols.

Nat Commun

Guangdong Key Laboratory of Environmental Catalysis and Health Risk Control, Guangdong-Hong Kong-Macao Joint Laboratory for Contaminants Exposure and Health, Institute of Environmental Health and Pollution Control, Guangdong University of Technology, Guangzhou, 510006, China.

Published: April 2023

AI Article Synopsis

  • - The study introduces a bioinspired artificial spider silk (ASS) photocatalyst that captures and inactivates airborne bacteria effectively, avoiding common issues with traditional filtration systems.
  • - The unique design of the ASS, featuring a periodic spindle structure on nylon fiber, allows it to outperform regular nylon fiber in capturing bacteria and achieves an impressive inactivation efficiency of 99.99% after 4 hours of light exposure.
  • - The technology utilizes physical properties like hydrophilicity and surface roughness to enhance bacteria capture and inactivates them through photocatalysis at specific interfaces, offering a promising solution for bioaerosol purification.

Article Abstract

Bioaerosol can cause the spread of disease, and therefore, capture and inactivation of bioaerosols is desirable. However, filtration systems can easily become blocked, and are often unable to inactivate the bioaerosol once it is captured. Herein, we reported a bioinspired artificial spider silk (ASS) photocatalyst, consisting of a periodic spindle structure of TiO on nylon fiber that can efficiently capture and concentrate airborne bacteria, followed by photocatalytic inactivation in situ, without a power-supply exhaust system. The ASS photocatalyst exhibits a higher capture capacity than the nylon fiber substrate and a photocatalytic inactivation efficiency of 99.99% obtained under 4 h irradiation. We found that the capture capacity of the ASS photocatalyst can be mainly attributed to the synergistic effects of hydrophilicity, Laplace pressure differences caused by the size of the spindle knots and surface energy gradients induced by surface roughness. The bacteria captured by the ASS photocatalyst are inactivated by photocatalysis within droplets or at the air/photocatalyst interfaces. This strategy paves the way for constructing materials for bioaerosol purification.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10134728PMC
http://dx.doi.org/10.1038/s41467-023-38194-1DOI Listing

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