A Comparative Study of the Antiviral Properties of Thermally Sprayed Coatings against Human Coronavirus HCoV-229E

Author:

Alebrahim Elnaz1,Khatibnezhad Hediyeh1,Bajgiran Morvarid Mohammadian1ORCID,Solomon Magan2,Liang Chen23,Sagan Selena M.34ORCID,Lima Rogerio S.5ORCID,Oberste Berghaus Jörg5,Aghasibeig Maniya5ORCID,Moreau Christian1ORCID

Affiliation:

1. Department of Mechanical, Industrial and Aerospace Engineering, Concordia University, 1455 de Maisonneuve Blvd. W, Montreal, QC H3G 1M8, Canada

2. Department of Medicine, Division of Experimental Medicine, McGill University, 3755 Côte Ste-Catherine Road, Montreal, QC H3T 1E2, Canada

3. Department of Microbiology and Immunology, McGill University, 3775 Rue University Street, Montreal, QC H3A 2B4, Canada

4. Department of Biochemistry, McGill University, 3655 Promenade Sir William Osler, Montreal, QC H3G 1Y6, Canada

5. National Research Council Canada, 75 de Mortagne Blvd., Boucherville, QC J4B 6Y4, Canada

Abstract

For decades, novel viral strains of respiratory tract infections have caused human pandemics and initiated widespread illnesses. The recent coronavirus disease 2019 (COVID-19) outbreak caused by the SARS-CoV-2 virus has raised an urgent need to develop novel antiviral coatings as one of the potential solutions to mitigate the transmission of viral pathogens. Titanium dioxide is considered an excellent candidate for viral disinfection under light irradiation, with the potential to be activated under visible light for indoor applications. This research assessed the antiviral performance of thermally sprayed TiO2 coatings under UVA and ambient light. We also report the antiviral performance of TiO2 composites with other oxides, such as Cu2O and Al2O3, produced by suspension plasma spray, atmospheric plasma spray, and suspension high-velocity oxygen fuel techniques. To evaluate the antiviral performance of the above coatings in a containment level-2 laboratory, a human common cold coronavirus, HCoV-229E, was initially used as a relevant surrogate for SARS-CoV-2. Coatings were also analyzed using SEM and XRD and were classified based on their surface roughness, porosity, and phase composition. Collectively, the thermally sprayed coatings showed comparable or slightly better antiviral activity compared to copper. The most significant level of activity observed was approximately 20% to 50% higher than that of a pure copper plate.

Funder

Alliance Program of the Natural Sciences and Engineering Research Council of Canada

Accelerate Program of Mitacs

Publisher

MDPI AG

Subject

Physical and Theoretical Chemistry,Catalysis,General Environmental Science

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