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Copper@ZIF-8 Core-Shell Nanowires for Reusable Antimicrobial Face Masks.
Kumar, Abhishek; Sharma, Anu; Chen, Yi; Jones, Megan M; Vanyo, Stephen T; Li, Changning; Visser, Michelle B; Mahajan, Supriya D; Sharma, Rakesh Kumar; Swihart, Mark T.
  • Kumar A; Department of Chemical and Biological Engineering University at Buffalo (SUNY) Buffalo New York 14260 USA.
  • Sharma A; Department of Chemical and Biological Engineering University at Buffalo (SUNY) Buffalo New York 14260 USA.
  • Chen Y; Department of Chemistry University of Delhi Delhi 110007 India.
  • Jones MM; Department of Chemical and Biological Engineering University at Buffalo (SUNY) Buffalo New York 14260 USA.
  • Vanyo ST; Department of Oral Biology University at Buffalo (SUNY) Buffalo New York 14214 USA.
  • Li C; Department of Oral Biology University at Buffalo (SUNY) Buffalo New York 14214 USA.
  • Visser MB; Department of Biomedical Engineering University at Buffalo (SUNY) Buffalo New York 14260 USA.
  • Mahajan SD; Department of Oral Biology University at Buffalo (SUNY) Buffalo New York 14214 USA.
  • Sharma RK; Department of Medicine Division of Allergy, Immunology and Rheumatology Jacobs School of Medicine and Biomedical Sciences University at Buffalo (SUNY) Buffalo New York 14260 USA.
  • Swihart MT; Department of Chemistry University of Delhi Delhi 110007 India.
Adv Funct Mater ; 31(10): 2008054, 2021 Mar 03.
Article in English | MEDLINE | ID: covidwho-985905
ABSTRACT
SARS-CoV-2 and other respiratory viruses spread via aerosols generated by infected people. Face masks can limit transmission. However, widespread use of disposable masks consumes tremendous resources and generates waste. Here, a novel material for treating blown polypropylene filtration media used in medical-grade masks to impart antimicrobial activity is reported. To produce thin copper@ZIF-8 core-shell nanowires (Cu@ZIF-8 NWs), Cu NWs are stabilized using a pluronic F-127 block copolymer, followed by growth of ZIF-8 to obtain uniform core-shell structures. The Cu@ZIF-8 NWs are applied to filtration media by dip coating. Aerosol filtration efficiency decreases upon exposure to ethanol (solvent for dip-coating), but increases with addition of Cu@ZIF-8 NWs. Cu@ZIF-8 NWs shows enhanced antibacterial activity, compared to Cu NWs or ZIF-8 alone, against Streptococcus mutans and Escherichia coli. Antiviral activity against SARS-CoV-2 is assayed using virus-infected Vero E6 cells, demonstrating 55% inhibition of virus replication after 48 h by 1 µg of Cu@ZIF-8 NWs per well. Cu@ZIF-8 NWs' cytotoxicity is tested against four cell lines, and their effect on inflammatory response in A549 cells is examined, demonstrating good biocompatibility. This low-cost, scalable synthesis and straightforward deposition of Cu@ZIF-8 NWs onto filter media has great potential to reduce disease transmission, resource consumption, and environmental impact of waste.
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Full text: Available Collection: International databases Database: MEDLINE Language: English Journal: Adv Funct Mater Year: 2021 Document Type: Article

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Full text: Available Collection: International databases Database: MEDLINE Language: English Journal: Adv Funct Mater Year: 2021 Document Type: Article