Spectral Line Shapes of He I Line 3889 Å

Spectral line shapes of neutral helium 3889 Å(23S–33P) transition line are calculated by using several theoretical methods. The electronic contribution to the line broadening is calculated from quantum statistical many-particle theory by using thermodynamic Green's function, including dynamic s...

Full description

Bibliographic Details
Main Authors: Omar, B., González, M., Gigosos, M., Ramazanov, T., Jelbuldina, M., Dzhumagulova, K., Zammit, Mark, Fursa, Dmitry, Bray, Igor
Format: Journal Article
Published: MDPI AG 2014
Subjects:
Online Access:http://hdl.handle.net/20.500.11937/4259
_version_ 1848744465321164800
author Omar, B.
González, M.
Gigosos, M.
Ramazanov, T.
Jelbuldina, M.
Dzhumagulova, K.
Zammit, Mark
Fursa, Dmitry
Bray, Igor
author_facet Omar, B.
González, M.
Gigosos, M.
Ramazanov, T.
Jelbuldina, M.
Dzhumagulova, K.
Zammit, Mark
Fursa, Dmitry
Bray, Igor
author_sort Omar, B.
building Curtin Institutional Repository
collection Online Access
description Spectral line shapes of neutral helium 3889 Å(23S–33P) transition line are calculated by using several theoretical methods. The electronic contribution to the line broadening is calculated from quantum statistical many-particle theory by using thermodynamic Green's function, including dynamic screening of the electron-atom interaction. The ionic contribution is taken into account in a quasistatic approximation, where a static microfield distribution function is presented. Strong electron collisions are consistently considered with an effective two-particle T-matrix approach, where Convergent Close Coupling method gives scattering amplitudes including Debye screening for neutral helium. Then the static profiles converted to dynamic profiles by using the Frequency Fluctuation Model. Furthermore, Molecular Dynamics simulations for interacting and independent particles are used where the dynamic sequence of microfield is taken into account. Plasma parameters are diagnosed and good agreements are shown by comparing our theoretical results with the recent experimental result of Jovićević et al. (J. Phys. B: At. Mol. Opt. Phys. 2005, 38, 1249). Additionally, comparison with various experimental data in a wide range of electron density ne ≈ (1022− 1024)m−3 and temperature T ≈ (2−6) × 104 K are presented.
first_indexed 2025-11-14T06:01:54Z
format Journal Article
id curtin-20.500.11937-4259
institution Curtin University Malaysia
institution_category Local University
last_indexed 2025-11-14T06:01:54Z
publishDate 2014
publisher MDPI AG
recordtype eprints
repository_type Digital Repository
spelling curtin-20.500.11937-42592017-09-13T14:47:32Z Spectral Line Shapes of He I Line 3889 Å Omar, B. González, M. Gigosos, M. Ramazanov, T. Jelbuldina, M. Dzhumagulova, K. Zammit, Mark Fursa, Dmitry Bray, Igor molecular dynamics simulations Green’s function plasma diagnostics spectral line shapes microfield distribution function T-matrix Spectral line shapes of neutral helium 3889 Å(23S–33P) transition line are calculated by using several theoretical methods. The electronic contribution to the line broadening is calculated from quantum statistical many-particle theory by using thermodynamic Green's function, including dynamic screening of the electron-atom interaction. The ionic contribution is taken into account in a quasistatic approximation, where a static microfield distribution function is presented. Strong electron collisions are consistently considered with an effective two-particle T-matrix approach, where Convergent Close Coupling method gives scattering amplitudes including Debye screening for neutral helium. Then the static profiles converted to dynamic profiles by using the Frequency Fluctuation Model. Furthermore, Molecular Dynamics simulations for interacting and independent particles are used where the dynamic sequence of microfield is taken into account. Plasma parameters are diagnosed and good agreements are shown by comparing our theoretical results with the recent experimental result of Jovićević et al. (J. Phys. B: At. Mol. Opt. Phys. 2005, 38, 1249). Additionally, comparison with various experimental data in a wide range of electron density ne ≈ (1022− 1024)m−3 and temperature T ≈ (2−6) × 104 K are presented. 2014 Journal Article http://hdl.handle.net/20.500.11937/4259 10.3390/atoms2020277 MDPI AG fulltext
spellingShingle molecular dynamics simulations
Green’s function
plasma diagnostics
spectral line shapes
microfield distribution function
T-matrix
Omar, B.
González, M.
Gigosos, M.
Ramazanov, T.
Jelbuldina, M.
Dzhumagulova, K.
Zammit, Mark
Fursa, Dmitry
Bray, Igor
Spectral Line Shapes of He I Line 3889 Å
title Spectral Line Shapes of He I Line 3889 Å
title_full Spectral Line Shapes of He I Line 3889 Å
title_fullStr Spectral Line Shapes of He I Line 3889 Å
title_full_unstemmed Spectral Line Shapes of He I Line 3889 Å
title_short Spectral Line Shapes of He I Line 3889 Å
title_sort spectral line shapes of he i line 3889 å
topic molecular dynamics simulations
Green’s function
plasma diagnostics
spectral line shapes
microfield distribution function
T-matrix
url http://hdl.handle.net/20.500.11937/4259