Sterilization and Filter Performance of Nano- and Microfibrous Facemask Filters - Electrospinning and Restoration of Charges for Competitive Sustainable Alternatives.

IF 4.2 3区 化学 Q2 POLYMER SCIENCE Macromolecular Rapid Communications Pub Date : 2024-12-27 DOI:10.1002/marc.202400867
Gordon Herwig, Till Batt, Pietro Clement, Peter Wick, René M Rossi
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Abstract

Facemask materials have been under constant development to optimize filtration performance, wear comfort, and general resilience to chemical and mechanical stress. While single-use polypropylene meltblown membranes are the established go-to material for high-performing mask filters, they are neither sustainable nor particularly resistant to sterilization methods. Herein an in-depth analysis is provided of the sterilization efficiency, filtration efficiency, and breathing resistance of selected aerosol filters commonly implemented in facemasks, with a particular focus on the benefits of nanofibrous filters. After establishing a general overview over face mask filters and machine washing parameters required for successful decontamination, respective changes in filter performance and structure are presented. Sustainably manufactured, highly efficient, but also more fragile electrospun membranes not only offer competitive performance as well as a more environment-friendly production and degradation process, but also support a subsequent sterilization and recharging approach via alcohol exposition and drying in an electric field. It is further elaborated on the prospective sustainability of each material to offer a clear outlook on electrospun membranes as the most promising filter membranes of the future.

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纳米和微纤维面罩过滤器的灭菌和过滤性能。静电纺丝和竞争性可持续替代品的电荷恢复。
口罩材料一直在不断发展,以优化过滤性能,佩戴舒适性,以及对化学和机械应力的一般弹性。虽然一次性聚丙烯熔喷膜是高性能口罩过滤器的常用材料,但它们既不能持续使用,也不能特别抵抗灭菌方法。本文对口罩中常用的气溶胶过滤器的灭菌效率、过滤效率和呼吸阻力进行了深入分析,并特别关注了纳米纤维过滤器的优点。在建立了口罩过滤器和成功去污所需的机洗参数的总体概述之后,介绍了过滤器性能和结构的各自变化。可持续生产,高效,但更脆弱的静电纺丝膜不仅具有竞争力的性能和更环保的生产和降解过程,而且还支持后续灭菌和充电方法,通过酒精暴露和电场干燥。进一步阐述了每种材料的可持续性发展前景,为电纺丝膜作为未来最有前途的过滤膜提供了清晰的前景。
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来源期刊
Macromolecular Rapid Communications
Macromolecular Rapid Communications 工程技术-高分子科学
CiteScore
7.70
自引率
6.50%
发文量
477
审稿时长
1.4 months
期刊介绍: Macromolecular Rapid Communications publishes original research in polymer science, ranging from chemistry and physics of polymers to polymers in materials science and life sciences.
期刊最新文献
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