On the emergence of antibacterial and antiviral copper cold spray coatings

抗菌剂 气动冷喷涂 大流行 食品接触材料 2019年冠状病毒病(COVID-19) 化学 纳米技术 材料科学 冶金 生物 传染病(医学专业) 微生物学 涂层 医学 食品包装 疾病 食品科学 病理
作者
Bryer C. Sousa,Christopher Massar,Matthew A. Gleason,Danielle L. Cote
出处
期刊:Journal of Biological Engineering [BioMed Central]
卷期号:15 (1) 被引量:23
标识
DOI:10.1186/s13036-021-00256-7
摘要

In this literature review, the antipathogenic properties and contact-mediated antibacterial and antiviral performance of copper cold spray surfaces are assessed and compared with alternative antimicrobial materials that are able to kill and/or inactivate infectious agents via direct contact. Discussion is also provided concerning the suitability of copper cold spray material consolidations as biocidal and viricidal surfaces that retain long-term functionality as a preventative measure against fomite transmission of pathogenic agents and hospital-acquired infections from contaminated high-touch surfaces. Numerable alternative antimicrobial coatings and surfaces that do not rely upon the oligodynamic action of copper are detailed. Given the ongoing need for recognition of said alternative antimicrobial materials by authoritative agencies, such as the U.S. Environmental Protection Agency, the relevant literature on non-copper-based antipathogenic coatings and surfaces are then described. Furthermore, a wide-ranging take on antipathogenic copper cold spray coatings are provided and consideration is given to the distinctive grain-boundary mediated copper ion diffusion pathways found in optimizable, highly deformed, copper cold spray material consolidations that enable pathogen inactivation on surfaces from direct contact. To conclude this literature review, analysis of how copper cold spray coatings can be employed as a preventative measure against COVID-19 was also presented in light of on-going debates surrounding SARS-CoV-2's non-primary, but non-negligible, secondary transmission pathway, and also presented in conjunction with the inevitability that future pathogens, which will be responsible for forthcoming global pandemics, may spread even more readily via fomite pathways too.

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