Tuning the composition of plasma-activated water by a surface-wave microwave discharge and a kHz plasma jet

被引:62
作者
Kutasi, Kinga [1 ]
Popovic, Dean [2 ]
Krstulovic, Niksa [2 ]
Milosevic, Slobodan [2 ]
机构
[1] Hungarian Acad Sci, Wigner Res Ctr Phys, Inst Solid State Phys & Opt, POB 49, H-1525 Budapest, Hungary
[2] Inst Phys, Bijenicka Cesta 46, Zagreb 10000, Croatia
关键词
plasma activated liquids; surface-wave microwave discharge; plasma jet; ATMOSPHERIC-PRESSURE PLASMA; ANTIMICROBIAL ACTIVITY; INACTIVATION; AIR; POSTDISCHARGE; CHEMISTRY; BACTERIA;
D O I
10.1088/1361-6595/ab3c2f
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
An atmospheric pressure surface-wave microwave discharge and a kHz plasma jet are used to activate purified water. It is shown, that by varying the treatment distance and the initial Ar/N-2/O-2 mixture composition of the surface-wave microwave discharge the concentration ratio of NO3- and H2O2 radicals created in the plasma activated water (PAW) can be varied over three orders of magnitude, which can be preserved during months of storage at room temperature. At the same time, with the 5 min treatment of the 32 ml water the absolute radical concentrations are varied in the range of 0.5-85 mg l(-1) for H2O2, 20-180 mg l(-1) for NO3- and 0.5-14 mg l(-1) for NO2-. In the case of the N-2 kHz plasma jet this concentration ratio can be tuned within one order of magnitude by varying the treatment distance. By treating different volumes very similar concentration ratios are obtained, which evolve differently during storage, as the ageing dynamics is determined by the absolute concentration of radicals. In general, the radical most affected by ageing is NO2-, whose recombination is found to be determined by the H2O2 radical. In order to control the H2O2 concentration and thus the NO2- radicals recombination, the application of a Fenton type reaction is suggested, which is implied by inserting a copper surface into PAW during or after plasma treatment.
引用
收藏
页数:11
相关论文
共 39 条
[1]   Chemical Effects of Air Plasma Species on Aqueous Solutes in Direct and Delayed Exposure Modes: Discharge, Post-discharge and Plasma Activated Water [J].
Brisset, Jean-Louis ;
Pawlat, Joanna .
PLASMA CHEMISTRY AND PLASMA PROCESSING, 2016, 36 (02) :355-381
[2]   Peroxynitrite: A Re-examination of the Chemical Properties of Non-thermal Discharges Burning in Air Over Aqueous Solutions [J].
Brisset, Jean-Louis ;
Hnatiuc, Eugen .
PLASMA CHEMISTRY AND PLASMA PROCESSING, 2012, 32 (04) :655-674
[3]   Analysis of the production mechanism of H2O2 in water treated by helium DC plasma jets [J].
Chen, Zeyu ;
Liu, Dingxin ;
Chen, Chen ;
Xu, Dehui ;
Liu, Zhijie ;
Xia, Wenjie ;
Rong, Mingzhe ;
Kong, Michael G. .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2018, 51 (32)
[4]   Nonequilibrium Plasma-Activated Antimicrobial Solutions are Broad-Spectrum and Retain their Efficacies for Extended Period of Time [J].
Ercan, Utku K. ;
Wang, Hong ;
Ji, Haifeng ;
Fridman, Gregory ;
Brooks, Ari D. ;
Joshi, Suresh G. .
PLASMA PROCESSES AND POLYMERS, 2013, 10 (06) :544-555
[5]   Formation of reactive nitrogen species including peroxynitrite in physiological buffer exposed to cold atmospheric plasma [J].
Girard, Fanny ;
Badets, Vasilica ;
Blanc, Sylvie ;
Gazeli, Kristaq ;
Marlin, Laurent ;
Authier, Laurent ;
Svarnas, Panagiotis ;
Sojic, Neso ;
Clement, Franck ;
Arbault, Stephane .
RSC ADVANCES, 2016, 6 (82) :78457-78467
[6]   Effects of pH on Bacterial Inactivation in Aqueous Solutions due to Low-Temperature Atmospheric Pressure Plasma Application [J].
Ikawa, Satoshi ;
Kitano, Katsuhisa ;
Hamaguchi, Satoshi .
PLASMA PROCESSES AND POLYMERS, 2010, 7 (01) :33-42
[7]   Control of reactive oxygen and nitrogen species production in liquid by nonthermal plasma jet with controlled surrounding gas [J].
Ito, Taiki ;
Uchida, Giichiro ;
Nakajima, Atsushi ;
Takenaka, Kosuke ;
Setsuhara, Yuichi .
JAPANESE JOURNAL OF APPLIED PHYSICS, 2017, 56 (01)
[8]  
Jukak J, 2012, PHYS MEDICA, V28, P230
[9]   Contribution to the Chemistry of Plasma-Activated Water [J].
Julak, J. ;
Hujacova, A. ;
Scholtz, V. ;
Khun, J. ;
Holada, K. .
PLASMA PHYSICS REPORTS, 2018, 44 (01) :125-136
[10]  
Kamgang-Youbi G, 2007, APPL ENVIRON MICROB, V73, P4791, DOI 10.1128/AEM.00120-07