利用由蛋白质纳米纤维和氧化铁纳米颗粒组成的颗粒材料捕获装载病毒的气溶胶

A. Armanious, Heyun Wang, P. Alpert, C. Medaglia, Mohammad Peydayesh, Arnaud Charles-Antoine Zwygart, Christian Gübeli, S. Handschin, S. Bolisetty, M. Ammann, C. Tapparel, F. Stellacci, R. Mezzenga
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摘要

正在进行的COVID-19大流行表明,开发有效的病毒治疗方法可能会被新出现的变体、免疫力下降、疫苗怀疑/犹豫、缺乏资源以及开发病毒特异性治疗方法所需的时间所超越,这强调了非药物干预措施作为抵御病毒爆发和大流行的第一道防线的重要性。然而,事实证明,与空气传播的病毒作斗争极具挑战性,如果需要在全球范围内以环境友好的方式实现这一目标,则难度更大。本文介绍了一种以乳清蛋白纳米原纤维和氧化铁纳米颗粒为基础的颗粒材料制成的气溶胶过滤介质。这种材料是环保的,可生物降解的,主要由乳制品工业的副产品组成。它对包膜和非包膜病毒的过滤效率在95.91%至99.99%之间,包括SARS-CoV-2、甲型H1N1流感病毒株、肠病毒71、噬菌体Φ6和噬菌体MS2。虽然过滤效率相对较高,但以高压降(≈0.03 bar)为代价。我们相信,本文提出的方法和结果将有助于提高我们对颗粒气溶胶过滤器的理解,希望有助于设计具有低压降的高效颗粒介质。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Trapping virus-loaded aerosols using granular material composed of protein nanofibrils and iron oxyhydroxides nanoparticles
The ongoing COVID-19 pandemic has revealed that developing effective therapeutics against viruses might be outpaced by emerging variants, waning immunity, vaccine skepticism/hesitancy, lack of resources, and the time needed to develop virus-specific therapeutics, emphasizing the importance of non-pharmaceutical interventions as the first line of defense against virus outbreaks and pandemics. However, fighting the spread of airborne viruses has proven extremely challenging, much more if this needs to be achieved on a global scale and in an environmentally-friendly manner. Here, we introduce an aerosol filter media made of granular material based on whey protein nanofibrils and iron oxyhydroxides nanoparticles. The material is environmentally-friendly, biodegradable, and composed mainly of a dairy industry byproduct. It features filtration efficiencies between 95.91% and 99.99% for both enveloped and non-enveloped viruses, including SARS-CoV-2, the influenza A virus strain H1N1, enterovirus 71, bacteriophage Φ6, and bacteriophage MS2. While the filtration efficiencies were relatively high, they came at the cost of high pressure drop (≈0.03 bar). We believe that the methods and results presented here will contribute to advancing our understanding of granular-based aerosol filters, hopefully helping the design of highly-efficient granular media with low-pressure drops.
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