Generation of Antimicrobial NOx by Atmospheric Air Transient Spark Discharge

被引:0
|
作者
M. Janda
V. Martišovitš
K. Hensel
Z. Machala
机构
[1] Comenius University,Division of Environmental Physics, Faculty of Mathematics, Physics and Informatics
来源
关键词
Non-equilibrium air plasma; Transient spark; Nitrogen oxides; Antimicrobial agents; Time-resolved optical diagnostic;
D O I
暂无
中图分类号
学科分类号
摘要
Atmospheric pressure air plasma discharges generate potential antimicrobial agents, such as nitrogen oxides and ozone. Generation of nitrogen oxides was studied in a DC-driven self-pulsing (1–10 kHz) transient spark (TS) discharge. The precursors of NOx production and the TS characteristics were studied by nanosecond time-resolved optical diagnostics: a photomultiplier module and a spectrometer coupled with fast intensified camera. Thanks to the short (~10–100 ns) high current (>1 A) spark current pulses, highly reactive non-equilibrium plasma is generated. Ozone was not detectable in the TS, probably due to higher gas temperature after the short spark current pulses, but the NOx production rate of ~7 × 1016 molecules/J was achieved. The NO2/NO ratio decreased with increasing TS repetition frequency, which is related to the complex frequency-dependent discharge properties and thus changing NO2/NO generating mechanisms. Further optimization of NO2 and NO production to improve the biomedical and antimicrobial effects is possible by modifying the electric circuit generating the TS discharge.
引用
收藏
页码:767 / 781
页数:14
相关论文
共 50 条
  • [1] Generation of Antimicrobial NOx by Atmospheric Air Transient Spark Discharge
    Janda, M.
    Martisovits, V.
    Hensel, K.
    Machala, Z.
    PLASMA CHEMISTRY AND PLASMA PROCESSING, 2016, 36 (03) : 767 - 781
  • [2] The influence of electric circuit parameters on NOx generation by transient spark discharge
    Janda, Mario
    Hensel, Karol
    Machala, Zdenko
    Field, Thomas A.
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2023, 56 (48)
  • [3] Study of transient spark discharge focused at NOx generation for biomedical applications
    Janda, M.
    Martisovits, V.
    Hensel, K.
    Machala, Z.
    6TH INTERNATIONAL WORKSHOP & SUMMER SCHOOL ON PLASMA PHYSICS 2014 (IWSSPP'14), 2016, 768
  • [4] Air spark-like plasma source for antimicrobial NOx generation
    Pavlovich, M. J.
    Ono, T.
    Galleher, C.
    Curtis, B.
    Clark, D. S.
    Machala, Z.
    Graves, D. B.
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2014, 47 (50)
  • [5] Cross-correlation spectroscopy study of the transient spark discharge in atmospheric pressure air
    Janda, Mario
    Hoder, Tomas
    Sarani, Abdollah
    Brandenburg, Ronny
    Machala, Zdenko
    PLASMA SOURCES SCIENCE & TECHNOLOGY, 2017, 26 (05):
  • [6] The mechanism of spark discharge in air at atmospheric pressure
    Loeb, LB
    SCIENCE, 1929, 69 : 509 - 512
  • [7] The streamer-to-spark transition in a transient spark: a dc-driven nanosecond-pulsed discharge in atmospheric air
    Janda, Mario
    Machala, Zdenko
    Niklova, Adriana
    Martisovits, Viktor
    PLASMA SOURCES SCIENCE & TECHNOLOGY, 2012, 21 (04):
  • [8] CROSS-CORRELATION SPECTROSCOPY STUDY OF THE BREAKDOWN MECHANISM IN ATMOSPHERIC PRESSURE AIR TRANSIENT SPARK DISCHARGE
    Janda, M.
    Hoder, T.
    Sarani, A.
    Brandenburg, R.
    Machala, Z.
    HAKONE XV: INTERNATIONAL SYMPOSIUM ON HIGH PRESSURE LOW TEMPERATURE PLASMA CHEMISTRY: WITH JOINT COST TD1208 WORKSHOP: NON-EQUILIBRIUM PLASMAS WITH LIQUIDS FOR WATER AND SURFACE TREATMENT, 2016, : 386 - 389
  • [9] The mechanism of spark discharge in air at atmospheric pressure. I
    Loeb, LB
    Meek, JM
    JOURNAL OF APPLIED PHYSICS, 1940, 11 (06) : 438 - 447
  • [10] The mechanism of spark discharge in air at atmospheric pressure. II
    Loeb, LB
    Meek, JM
    JOURNAL OF APPLIED PHYSICS, 1940, 11 (07) : 459 - 474