Number of the records: 1  

Electric field determination from intensity ratio of N2+and N-2 bands: nonequilibrium transient discharges in pure nitrogen

  1. 1.
    SYSNO ASEP0518324
    Document TypeJ - Journal Article
    R&D Document TypeJournal Article
    Subsidiary JČlánek ve WOS
    TitleElectric field determination from intensity ratio of N2+and N-2 bands: nonequilibrium transient discharges in pure nitrogen
    Author(s) Bílek, P. (CZ)
    Šimek, Milan (UFP-V) RID, ORCID
    Bonaventura, Z. (CZ)
    Number of authors3
    Article number115011
    Source TitlePlasma Sources Science & Technology. - : Institute of Physics Publishing - ISSN 0963-0252
    Roč. 28, č. 11 (2019)
    Number of pages24 s.
    Languageeng - English
    CountryGB - United Kingdom
    Keywordsexcitation cross-sections ; impact excitation ; lifetime measurements ; vibrational-relaxation ; radiative lifetimes ; rate coefficients ; c(3)pi(u) state ; c-3-pi-u state ; n2 ; emission ; electric field ; sensitivity analysis ; uncertainty quantification ; optical emission spectroscopy ; cross sections ; nitrogen spectral bands ; nitrogen kinetics
    Subject RIVBL - Plasma and Gas Discharge Physics
    OECD categoryFluids and plasma physics (including surface physics)
    R&D ProjectsGA18-04676S GA ČR - Czech Science Foundation (CSF)
    Method of publishingLimited access
    Institutional supportUFP-V - RVO:61389021
    UT WOS000499443300001
    EID SCOPUS85080865531
    DOI10.1088/1361-6595/ab3936
    AnnotationWe developed an extension of the spectrometric method to estimate a reduced electric field (E/N), which is applicable in nitrogen-containing plasmas. The method is based on the intensity ratio of the emission bands of the first negative system (FNS) of N2+<i and the second positive system (SPS) of N-2. It uses the emission occurring in the wavelength interval 375?410 nm, which includes six SPS and two FNS bands. The choice of the spectral window is guided by much simpler acquisition and processing of experimental data than the SPS(0, 0) and FNS(0, 0) pair that is typically used. Following this idea, we construct a kinetic model for pure molecular nitrogen, which determines the population of the upper states responsible for the FNS and SPS emission. Moreover, we perform sensitivity analysis of the kinetic model, which allows us to reveal the most significant processes for the investigated intensity ratios. For these processes, we provide an in-depth review of the kinetic data that are available in the literature. We use the fact that the spectral window investigated contains bands to obtain three independent intensity ratios with sufficient signal-to-noise ratio ((FNS(0, 0)/SPS(0, 2), FNS(0, 0)/SPS(1, 4), FNS(0, 0)/SPS(2, 5)), which are usable for more accurate electric field determination. We also provide analytical formulas representing intensity ratio dependencies on E/N. Furthermore, we focus on different spectrometric representations of FNS and SPS bands, which also affect the precision of E/N determination. We examine the FNS/SPS band profiles in terms of different rotational temperatures and instrumental functions. Finally, we propose a simple procedure that enables the use of bandhead intensities in the intensity ratio dependencies, thus avoiding the need to evaluate integral band intensities from the recorded spectra.
    WorkplaceInstitute of Plasma Physics
    ContactVladimíra Kebza, kebza@ipp.cas.cz, Tel.: 266 052 975
    Year of Publishing2020
    Electronic addresshttps://iopscience.iop.org/article/10.1088/1361-6595/ab3936
Number of the records: 1  

  This site uses cookies to make them easier to browse. Learn more about how we use cookies.