利用碳基材料进行病毒过滤

Rupy Kaur Matharu, Harshit Porwal, Biqiong Chen, Lena Ciric, Mohan Edirisinghe
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引用次数: 23

摘要

病毒感染本身就是全世界发病率和死亡率的一个重要原因,并对全球保健和社会经济发展产生有害影响。随着病毒爆发次数的增加,新的抗病毒治疗方法的发现获得了极大的关注和支持。在这项工作中,研究了碳质材料,包括石墨烯纳米片和氧化石墨烯纳米片的抗病毒性能。用扫描电镜和透射电镜对材料进行了表征。分析表明,材料是二维的,氧化石墨烯的横向尺寸在1到4µm之间,石墨烯纳米片的横向尺寸在110±0.11 nm之间。对浓度为0.5、1.0和2.0 wt/v%的DNA病毒模型微生物进行抗病毒特性评估。两种碳质纳米材料都表现出强大的抗病毒特性,在所有浓度的测试中都能使病毒减少100%。然后将氧化石墨烯纳米片掺入聚合纤维中,并在3和24小时后检测其抗病毒行为。暴露24小时后观察到病毒减少39%。这项研究首次展示了几种碳质纳米材料的抗病毒潜力,这些材料也包含在载体聚合物中。这些结果可以在许多领域和设备中转化和实施,以防止病毒传播和感染。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Viral filtration using carbon-based materials

Viral filtration using carbon-based materials

Viral infections alone are a significant cause of morbidity and mortality worldwide and have a detrimental impact on global healthcare and socio-economic development. The discovery of novel antiviral treatments has gained tremendous attention and support with the rising number of viral outbreaks. In this work, carbonaceous materials, including graphene nanoplatelets and graphene oxide nanosheets, were investigated for antiviral properties. The materials were characterized using scanning electron microscopy and transmission electron microscopy. Analysis showed the materials to be two-dimensional with lateral dimensions ranging between 1 and 4 µm for graphene oxide and 110 ± 0.11 nm for graphene nanoplatelets. Antiviral properties were assessed against a DNA virus model microorganism at concentrations of 0.5, 1.0 and 2.0 wt/v%. Both carbonaceous nanomaterials exhibited potent antiviral properties and gave rise to a viral reduction of 100% across all concentrations tested. Graphene oxide nanosheets were then incorporated into polymeric fibres, and their antiviral behaviour was examined after 3 and 24 hr. A viral reduction of 39% was observed after 24 hr of exposure. The research presented here showcases, for the first time, the antiviral potential of several carbonaceous nanomaterials, also included in a carrier polymer. These outcomes can be translated and implemented in many fields and devices to prevent viral spread and infection.

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