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Diagnostics of non - equilibrium plasma generated in dielectric barrier discharges

Treść / Zawartość
Identyfikatory
Warianty tytułu
Konferencja
International Conference on Research and Applications of Plasmas, Plasma-2011, 12-16 September 2011, Warsaw, Poland
Języki publikacji
EN
Abstrakty
EN
Results of electrical and spectroscopic diagnostics of dielectric barrier discharges by applying ceramic plates made of high permittivity material are presented. The spectroscopic diagnostic is based on analysis of spectral and spatial distribution of the hydrogen H alfa emission in the gas gap. From these measurements, e.g. the distributions of electric field strength and kinetic energy of excited hydrogen atoms in the discharge volume have been determined.
Czasopismo
Rocznik
Strony
253--256
Opis fizyczny
Bibliogr. 16 poz., rys.
Twórcy
autor
autor
  • Institute of Physics, Opole University, 48 Oleska Str., 45-052 Opole, Poland, Tel.: + 48 77 452 7250, Fax: +48 77 452 7290, musielok@uni.opole.pl
Bibliografia
  • 1. Babaeva NY, Kushner MJ (2010) Intracellular electric fields produced by dielectric barrier discharge treatment of skin. J Phys D: Appl Phys 43:185206–185218
  • 2. Boeuf JP (2003) Plasma display panels: physics, recent developments and key issues. J Phys D: Appl Phys 36;6:R53–R79
  • 3. Eliasson B, Kogelschatz U (1991) Nonequilibrium volume plasma chemical processing. IEEE Trans Plasma Sci 19:309–323
  • 4. Iza F, Kim GJ, Lee SM et al. (2008) Microplasmas: sources, particle kinetics, and biomedical applications. Plasma Process Polym 5:322–344
  • 5. Janus HW (2007) Contribution of Stark broadening to the Balmer Hα line profile observed from barrier discharges in Ar/H2 gas mixtures. J Phys D: Appl Phys 40:3608–3615
  • 6. Janus HW, Jeleński W, Musielok J, Kusz J (1991) Study of VUV radiation of an argon-plasma generated near ceramic surfaces at pressures below 0.1 MPa. Appl Phys B 52:376–379
  • 7. Kogelschatz U (2007) Applications of microplasmas and microreactor technology. Contrib Plasma Phys 47:80–88
  • 8. Kozlov KV, Wagner HE (2007) Progress in spectroscopic diagnostics of barrier discharge. Contrib Plasma Phys 47;1/2:26–33
  • 9. Kuchenbecker M, Bibinov N, Kaemlimg A, Wandke D, Awakowicz P, Viol W (2009) Characterization of DBD plasma source for biomedical applications. J Phys D: Appl Phys 42:045212–045222
  • 10. Loureiro J, Amorim J (2011) Anomalous Doppler broadening caused by exothermic reactions: application to hydrogen Balmer lines. Eur Phys J D 63:421–429
  • 11. Mariotti D (2008) Nonequilibrium and effect of gas mixtures in an atmospheric microplasma. Appl Phys Lett 92:151505–151508
  • 12. Neidholdt EL, Beauchamp JL (2011) Switched ferroelectric plasma ionizer (SwiFerr) for ambient mass spectrometry. Anal Chem 83:35–43
  • 13. Sismanoglu N, Grigorov KG, Santos RA et al. (2010) Spectroscopic diagnostics and electric field measurements in the near-cathode region of an atmospheric pressure microplasma jet. Eur Phys J D 60:479–487
  • 14. Spasojević D, Cvejić M, Šišović NM, Konjević N (2010) Simultaneous plasma and electric field diagnostics of microdischarge from hydrogen Balmer line shape. Appl Phys Lett 96:241501–241504
  • 15. Tachibana CK (2006) Current status of microplasma research. IEEJ Trans 1:145–155
  • 16.Wujec T, Janus H, Jeleński W (2003) Spectroscopic measurements of electric field distributions in dielectric barrier discharges in hydrogen. J Phys D: Appl Phys 36:868–877
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BUJ8-0022-0005
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