化学
大气压等离子体
等离子体
喷射(流体)
血浆药物
活性氧
等离子体活化
生物化学
物理
量子力学
热力学
作者
Yikang 怡康 JIA 贾,Tianhui 甜会 LI 李,Rui 瑞 ZHANG 张,Pengyu 鹏瑜 ZHAO 赵,Zifeng 子丰 WANG 王,Min 旻 CHEN 陈,Li 莉 GUO 郭,Dingxin 定新 LIU 刘
标识
DOI:10.1088/2058-6272/ad0c1f
摘要
Abstract Plasma-activated water (PAW), as an extended form of cold atmospheric-pressure plasma, greatly expands the application of plasma-based technology. The biological effects of PAW are closely related to the aqueous reactive species, which can be regulated by the activation process. In this study, surface plasma-activated air (SAA) and a He + O 2 plasma jet (Jet) were parallelly combined (the SAA + Jet combination) or sequentially combined (the SAA → Jet combination and the Jet → SAA combination) to prepare plasma-activated saline (PAS). The PAS activated by the combinations exhibited stronger bactericidal effects than that activated by the SAA or the Jet alone. The concentrations of H 2 O 2 and were higher in the PAS activated by the Jet → SAA combination, while ONOO − concentrations were close in the three kinds of PAS and 1 O 2 concentrations were higher in the PAS activated by the SAA + Jet combination. The analysis of scavengers also demonstrated that H 2 O 2 , 1 O 2 , and ONOO ‒ in the PAS activated by the SAA + Jet combination, and 1 O 2 in the PAS activated by the Jet → SAA combination played critical roles in bactericidal effects. Further, the effective placement time of the three PAS varied, and the PAS activated by the Jet → SAA combination could also inactivate 2.6-log 10 of MRSA cells after placement for more than 60 min. The regulation of reactive species in plasma-activated water via different combinations of plasma devices could improve the directional application of plasma-activated water in the biomedical field.
科研通智能强力驱动
Strongly Powered by AbleSci AI