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用于原位表面病原体消毒的纳米级等离子体激活气溶胶生成

Nanoscale plasma-activated aerosol generation for in situ surface pathogen disinfection.

作者信息

Chew Nicholas S L, Wong Kiing S, Chang Wei S, Ooi Chien W, Yeo Leslie Y, Tan Ming K

机构信息

Mechanical Engineering Discipline, School of Engineering, Monash University Malaysia, Bandar Sunway, Selangor Malaysia.

Chemical Engineering Discipline, School of Engineering, Monash University Malaysia, Bandar Sunway, Selangor Malaysia.

出版信息

Microsyst Nanoeng. 2022 Apr 14;8:41. doi: 10.1038/s41378-022-00373-3. eCollection 2022.

Abstract

Plasma treatment constitutes an efficient method for chemical-free disinfection. A spray-based system for dispensing plasma-activated aerosols onto surfaces would facilitate disinfection of complex and/or hidden surfaces inaccessible to direct line-of-sight (for example, UV) methods. The complexity and size of current plasma generators (for example, plasma jet and cometary plasma systems)-which prohibit portable operation, together with the short plasma lifetimes, necessitate a miniaturized in situ technique in which a source can be simultaneously activated and administered on-demand onto surfaces. Here, we demonstrate this possibility by combining two nanoscale technologies for plasma and aerosol generation into an integrated device that is sufficiently small and lightweight. Plasma is generated on a carpet of zinc oxide nanorods comprising a nanoneedle ensemble, which when raised to a high electric potential, constitutes a massive point charge array with near-singular electric fields to effect atmospheric breakdown. The plasma is then used to activate water transported through an underlying capillary wick, that is subsequently aerosolized under MHz-order surface acoustic waves. We show that the system, besides being amenable to miniaturization and hence integration into a chipscale device, leads to a considerable improvement in plasma-activation over its macroscale cometary discharge predecessor, with up to 20% and 127% higher hydrogen peroxide and nitrite ion concentrations that are respectively generated in the plasma-activated aerosols. This, in turn, leads to a 67% reduction in the disinfection time to achieve 95% bacterial load reduction, therefore demonstrating the potential of the technology as an efficient portable platform for on-demand field-use surface disinfection.

摘要

等离子体处理是一种高效的无化学消毒方法。一种基于喷雾的系统,用于将等离子体活化的气溶胶喷洒到表面上,将有助于对直接视线(例如紫外线)方法无法触及的复杂和/或隐蔽表面进行消毒。当前等离子体发生器(例如等离子体射流和彗星等离子体系统)的复杂性和尺寸——这使得便携式操作成为不可能,再加上等离子体寿命较短,需要一种小型化的原位技术,在这种技术中,源可以同时被激活并按需施用于表面。在这里,我们通过将两种用于产生等离子体和气溶胶的纳米技术集成到一个足够小且轻便的设备中来证明这种可能性。等离子体在由纳米针集合组成的氧化锌纳米棒地毯上产生,当将其提升到高电势时,它构成一个具有近奇异电场的大量点电荷阵列,以实现大气击穿。然后,等离子体用于激活通过下面的毛细管芯传输的水,随后在兆赫兹级表面声波作用下将其雾化。我们表明,该系统除了适合小型化并因此能够集成到芯片级设备中外,与宏观尺度的彗星放电前身相比,在等离子体活化方面有了相当大的改进,在等离子体活化气溶胶中分别产生的过氧化氢和亚硝酸根离子浓度高出多达20%和127%。这反过来又使消毒时间减少了67%,以实现细菌载量减少95%,因此证明了该技术作为一种高效的便携式平台用于按需现场表面消毒的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b31c/9008002/fd49afed51c7/41378_2022_373_Fig1_HTML.jpg

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