A study of helium atmospheric-pressure guided streamers for potential biological applications

被引:43
作者
Gazeli, K. [1 ,2 ]
Noel, C. [3 ,4 ]
Clement, F. [1 ]
Dauge, C. [1 ]
Svarnas, P. [2 ]
Belmonte, T. [3 ,4 ]
机构
[1] Pau Univ UPPA IPREM UMR 5254 LCABIE, Pau, France
[2] Univ Patras, High Voltage Lab, Dept Elect & Comp Engn, Rion 26504, Greece
[3] Univ Lorraine, Inst Jean Lamour, UMR CNRS 7198, F-54042 Nancy, France
[4] CNRS, Inst Jean Lamour, UMR CNRS 7198, F-54042 Nancy, France
关键词
PLASMA; TEMPERATURE; DISCHARGE; AFTERGLOW; H2O; N-2;
D O I
10.1088/0963-0252/22/2/025020
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
The origin of differences in the rotational temperatures of various molecules and ions (N-2(+)(B), OH(A) and N-2(C)) is studied in helium atmospheric-pressure guided streamers. The rotational temperature of N-2(+)(B) is room temperature. It is estimated from the emission band of the first negative system at 391.4 nm, and it is governed by the temperature of N-2(X) in the surrounding air. N-2(X) is ionized by direct electron impact in the outer part of the plasma. N-2(+)(B) is deactivated by collisions with N-2 and O-2. The rotational temperature of OH(A), estimated from the OH band at 306.4 nm, is slightly higher than that of N-2(+)(B). OH(A) is excited by electron impact with H2O during the first 100 ns of the applied voltage pulse. Next, OH(A) is produced by electron impact with OH(X) created by the quenching of OH(A) by N-2 and O-2. H2O diffuses deeper than N-2 into the plasma ring and the rotational temperature of OH(A) is slightly higher than that of N-2(+)(B). The rotational temperature of N-2(C), estimated from the emission of the second positive system at 315.9 nm, is governed by its collisions with helium. The gas temperature of helium at the beginning of the pulse is predicted to be several hundred kelvin higher than room temperature.
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页数:9
相关论文
共 46 条
[1]   Collisional-radiative modelling of a helium microwave plasma in a resonant cavity [J].
Belmonte, T. ;
Cardoso, R. P. ;
Henrion, G. ;
Kosior, F. .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2007, 40 (23) :7343-7356
[2]   Variations of the gas temperature in He/N2 barrier discharges [J].
Bibinov, NK ;
Fateev, AA ;
Wiesemann, K .
PLASMA SOURCES SCIENCE & TECHNOLOGY, 2001, 10 (04) :579-588
[3]   Dynamics of a guided streamer ('plasma bullet') in a helium jet in air at atmospheric pressure [J].
Boeuf, J-P ;
Yang, L. L. ;
Pitchford, L. C. .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2013, 46 (01)
[4]   Computational study of cold atmospheric nanosecond pulsed helium plasma jet in air [J].
Breden, Doug ;
Miki, Kenji ;
Raja, Laxminarayan L. .
APPLIED PHYSICS LETTERS, 2011, 99 (11)
[5]   Influence of impurities on the temperature of an atmospheric helium plasma in microwave resonant cavity [J].
Cardoso, R. P. ;
Belmonte, T. ;
Keravec, P. ;
Kosior, F. ;
Henrion, G. .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2007, 40 (05) :1394-1400
[6]   Elucidation of Reaction Mechanisms Responsible for Afterglow and Reagent-Ion Formation in the Low-Temperature Plasma Probe Ambient Ionization Source [J].
Chan, George C. -Y. ;
Shelley, Jacob T. ;
Wiley, Joshua S. ;
Engelhard, Carsten ;
Jackson, Ayanna U. ;
Cooks, R. Graham ;
Hieftje, Gary M. .
ANALYTICAL CHEMISTRY, 2011, 83 (10) :3675-3686
[7]   THERMAL-ENERGY CHARGE-TRANSFER REACTIONS - HE-2(+) WITH N-2 AND CO [J].
ENDOH, M ;
TSUJI, M ;
NISHIMURA, Y .
JOURNAL OF CHEMICAL PHYSICS, 1983, 79 (11) :5368-5375
[8]   REVISED RATE CONSTANTS FOR QUENCHING REACTIONS OF EXCITED CO2+,N2O+, AND N2+ [J].
FREEMAN, CG ;
PHILLIPS, LF .
CANADIAN JOURNAL OF CHEMISTRY-REVUE CANADIENNE DE CHIMIE, 1974, 52 (03) :426-428
[9]   Applied plasma medicine [J].
Fridman, Gregory ;
Friedman, Gary ;
Gutsol, Alexander ;
Shekhter, Anatoly B. ;
Vasilets, Victor N. ;
Fridman, Alexander .
PLASMA PROCESSES AND POLYMERS, 2008, 5 (06) :503-533
[10]   THE FORMATION OF OH(A 2-SIGMA+) FROM H2O IN A LONGITUDINAL DISCHARGE [J].
GERBER, T ;
LUTHY, W .
JOURNAL OF CHEMICAL PHYSICS, 1983, 79 (11) :5445-5447