DocumentCode :
1593771
Title :
Pulsed plasma microjets: A new tool for plasma kinetics and molecular spectroscopy
Author :
Houlahan, Thomas J. ; Eden, J. Gary
Author_Institution :
Lab. for Opt. Phys. & Eng., Univ. of Illinois at Urbana-Champaign, Urbana, IL, USA
fYear :
2013
Firstpage :
1
Lastpage :
1
Abstract :
Summary form only given. The recent development of microcavity plasma devices fabricated in an Al/Al2O3 system has resulted in robust, chemically inert devices exhibiting relatively low breakdown voltages at near-atmospheric pressures. Due to their small size and near-atmospheric operating pressure, these and similar microcavity devices have been shown to produce metastable molecules, such as Xe2* and XeO*. Additionally, microjets having diameters as small as 300 μm have been demonstrated in Al/Al2O3 structures. These plasma devices enable the generation of transient molecules and radicals requiring an atmospheric pressure plasma environment. In this work, we investigate an Al/Al2O3 microjet combined with a pulsed gas system as a means of generating highly excited and/or metastable molecules at background pressures in excess of one atmosphere. Upon creation, these molecules are subsequently ejected into a vacuum environment, where they cool via supersonic expansion and are available for study in a setting that offers a greatly reduced degree of collisionality. Thus we are able to report a new tool for the study of not only metastable molecules, but of plasma kinetics in general. Recent results of experiments probing dissociative recombination of Ne2+ and Ar2+ will be described.
Keywords :
argon; dissociation; excited states; ion recombination; metastable states; neon; plasma chemistry; plasma collision processes; plasma devices; plasma jets; plasma kinetic theory; plasma sources; positive ions; Ar2+; Ar2+ dissociative recombination; Ne2+; Ne2+ dissociative recombination; aluminium-alumina system; atmospheric pressure plasma environment; chemically inert devices; collisionality degree; highly excited molecules; low breakdown voltage; metastable molecule production; metastable molecules; microcavity plasma devices; molecular spectroscopy; near atmospheric operating pressure; plasma kinetics; pulsed gas system; pulsed plasma microjets; radical generation; supersonic expansion; transient molecule generation; Aluminum oxide; Cavity resonators; Kinetic theory; Microcavities; Plasma devices;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Science (ICOPS), 2013 Abstracts IEEE International Conference on
Conference_Location :
San Francisco, CA
ISSN :
0730-9244
Type :
conf
DOI :
10.1109/PLASMA.2013.6634890
Filename :
6634890
Link To Document :
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