Generation of Antimicrobial NOx by Atmospheric Air Transient Spark Discharge

被引:91
|
作者
Janda, M. [1 ]
Martisovits, V. [1 ]
Hensel, K. [1 ]
Machala, Z. [1 ]
机构
[1] Comenius Univ, Fac Math Phys & Informat, Div Environm Phys, Mlynska Dolina F2, Bratislava 84248, Slovakia
关键词
Non-equilibrium air plasma; Transient spark; Nitrogen oxides; Antimicrobial agents; Time-resolved optical diagnostic; NITRIC-OXIDE; STREAMER DISCHARGES; CORONA DISCHARGES; OZONE SYNTHESIS; PLASMA-JET; PRESSURE; ENERGY; GAS; FIELD;
D O I
10.1007/s11090-016-9694-5
中图分类号
TQ [化学工业];
学科分类号
0817 ;
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 (similar to 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 similar to 7 x 10(16) 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:15
相关论文
共 50 条
  • [1] Generation of Antimicrobial NOx by Atmospheric Air Transient Spark Discharge
    M. Janda
    V. Martišovitš
    K. Hensel
    Z. Machala
    Plasma Chemistry and Plasma Processing, 2016, 36 : 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