武汉大学电气与自动化学院,武汉,430072
纸质出版:2025
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李毅恒, 范宁龙, 彭斌祺, 等. 空气放电产物快速吸收方法及灭菌研究[J]. 高电压技术, 2025,51(6):2904-2913.
LI Yiheng, FAN Ninglong, PENG Binqi, et al. Study on Fast Absorption Methods and Sterilization of Air Discharge Products[J]. 2025, 51(6): 2904-2913.
李毅恒, 范宁龙, 彭斌祺, 等. 空气放电产物快速吸收方法及灭菌研究[J]. 高电压技术, 2025,51(6):2904-2913. DOI: 10.13336/j.1003-6520.hve.20241885.
LI Yiheng, FAN Ninglong, PENG Binqi, et al. Study on Fast Absorption Methods and Sterilization of Air Discharge Products[J]. 2025, 51(6): 2904-2913. DOI: 10.13336/j.1003-6520.hve.20241885.
空气放电等离子体包含大量活性物质常被用于制备等离子体活化水(plasma-activated water,PAW)。该研究利用纳秒脉冲介质阻挡放电(dielectric barrier discharge,DBD)产生的臭氧(O3)对空气直流辉光放电生成的氮氧化物(NOx)进行了定量氧化,研究了混气中不同N价态的NOx(包括NO、NO2、N2O5)被水吸收的效率,以及吸收产物水溶液对金黄色葡萄球菌的灭活效果。结果表明:通过调节纯氧气下DBD产生的臭氧浓度,可以制备高选择性的气态NO2或N2O5。提升NOx中N的价态可有效提高其被水吸收的效率,将NOx全部氧化为N2O5后,单次水处理后的吸收效率即可达100%,实现了空气放电产物的完全快速吸收。同时提升NOx中N的价态制备的PAW pH降低、电导率明显升高,但氧化还原电位(oxidation-reduction potential,ORP)差异较小。PAW灭活金黄色葡萄球菌的实验表明,相同PAW处理时间内提升NOx中N的价态可以有效降低金黄色葡萄球菌存活率,存活率最大下降可达81.8%。延长PAW处理时间还可进一步提升灭菌效率,80 min的PAW处理时间可实现100%金黄色葡萄球菌灭活。该研究为空气放电产物快速吸收和空气放电高效制备PAW提供了参考。
The air discharge plasma contains numerous reactive species and is frequently used in the preparation of plasma-activated water (PAW). In this study
ozone (O3) produced by nanosecond pulse dielectric barrier discharge (DBD) was employed to quantitatively oxidize nitrogen oxides (NOx) formed during air DC glow discharge. We investigated the water absorption efficiency of NOx characterized by different N valence states (including NO
NO2
and N2O5) within mixed gases. Furthermore
we evaluated the inactivation effect of the resulting aqueous solutions on Staphylococcus aureus. The results indicate that
by adjusting the ozone concentration generated by DBD in a pure oxygen environment
highly selective gaseous NO2 or N2O5 can be synthesized. Increasing the N valence state in NOx significantly enhances its water absorption efficiency. Once all NOx is oxidized to N2O5
a single water treatment can achieve 100% absorption efficiency
enabling the complete and rapid capture of nitrogen fixation products from air discharge. Additionally
the PAW produced under increased N valence demonstrates decreased pH and significantly elevated conductivity
although the difference in oxidation-reduction potential (ORP) is minimal. The PAW inactivation experiments demonstrate that elevating the N valence in NOx effectively reduces the survival rate of Staphylococcus aureus
with a maximum reduction of 81.8%. Extending the treatment time with PAW can further enhance sterilization efficiency
achieving 100% inactivation of Staphylococcus aureus within 80 minutes. This study offers valuable insights into the rapid absorption of air discharge products and the efficient preparation of PAW.
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