氩
过氧化氢
电阻率和电导率
电导率
化学
分析化学(期刊)
氢
声表面波
表面电导率
材料科学
细菌生长
环境化学
地表水
比表面积
作者
C. Woo,Yong L. Wong,Yew M. Hung,Chien W. Ooi,Leslie Y. Yeo,Ming K. Tan
出处
期刊:
日期:2026-01-12
卷期号:73 (2): 208-217
标识
DOI:10.1109/tuson.2026.3651243
摘要
Plasma-activated aerosols produced via surface acoustic wave (SAW) nebulization has the potential for improving surface disinfection processes by providing wider distribution coverage due to the dispersibility of the aerosols. Motivated by previous studies showing that increasing the electrical conductivity of air plasma-activated water led to a significant reduction in the SAW nebulization rate, which poses a severe limitation to the efficiency of the technology, we evaluate here the use of argon plasma-jet-activated water as an alternative to air plasma-jets. Compared to the higher electrical conductivity of air plasma-jet-activated water (0.3 mS/cm ≤ σe≤ 4 mS/cm), argon plasma-jet-activated water has substantially lower conductivity (4 μS/cm ≤ σe≤ 40 μS/cm) and hence more efficient nebulization (103% higher nebulization rate compared to that for deionized water, in contrast to 65% lower nebulization rate with air plasma-jets). Nevertheless, despite its lower electrical conductivity, the argon plasma-jet-activated water was observed to maintainEscherichia coli(E. coli) inactivation efficacy even after 4 days of storage due to the high hydrogen peroxide concentrations that were produced. This is in sharp contrast to air plasma-jet-activated water, which yielded only limited bacterial inactivation efficiency (approximately 10.5% reduction) even when fresh and surprisingly promotedE. coligrowth after one day of storage. In particular, we found that 2.4 g of the argon plasma-jet aerosols, equivalent to just 10 mins of nebulization, was capable of achieving 100% bacterial inactivation, thus alluding to the platform’s potential for efficient and effective spray-based surface disinfection.
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