Guo Yuntao, Liu Peipei, Zhang Liyang, Peng Siqi, Wang Xinxin, Luo Haiyun, Wu Guizhen
Department of Electrical Engineering, Tsinghua University, Beijing 100084, China.
NHC Key Laboratory of Biosafety, National Institute for Viral Disease Control and Prevention, Chinese Center for Disease Control and Prevention, Beijing 102206, China.
Appl Phys Lett. 2021 Aug 30;119(9):090601. doi: 10.1063/5.0064020.
A variety of pathogens can cause people to suffer from serious diseases, and the transmission of COVID-19 through the cold chain has once again attracted people's attention to cold chain disinfection. Unfortunately, there is no mature cold chain disinfection technique yet. In this study, a low-temperature plasma disinfection technique for a cold chain is proposed. The disinfection effect of plasma generated by surface dielectric barrier discharge on in ice at cryogenic temperature is studied, and the possible disinfection mechanism is discussed. It is found that the O mode and the NO mode also exist in the surface dielectric barrier discharge at cryogenic temperature, just as at room temperature. The disinfection effect of both modes is weak in 5 min plasma treatment, but in 60 min post-treatment, the NO mode shows a stronger disinfection effect, with 4.45 log reduction. It is speculated that gaseous HO and NO can be adsorbed on the ice surface in the NO mode and then converted into peroxynitrite, which is a powerful bactericidal species. In conclusion, a low-temperature plasma is a promising technique for cold chain disinfection, which is of great significance for ensuring people's health.
多种病原体可导致人们患上严重疾病,而新冠病毒通过冷链传播再次引起人们对冷链消毒的关注。不幸的是,目前尚无成熟的冷链消毒技术。本研究提出了一种用于冷链的低温等离子体消毒技术。研究了表面介质阻挡放电产生的等离子体在低温下对冰中微生物的消毒效果,并探讨了可能的消毒机制。发现低温下的表面介质阻挡放电中也存在O模式和NO模式,与室温下一样。在5分钟的等离子体处理中,两种模式的消毒效果都较弱,但在60分钟的后处理中,NO模式显示出较强的消毒效果,减少了4.45个对数级。推测在NO模式下,气态HO和NO可吸附在冰表面,然后转化为过氧亚硝酸根,这是一种强大的杀菌物质。总之,低温等离子体是一种很有前景的冷链消毒技术,对保障人们的健康具有重要意义。