Electronic branching ratios of spontaneous emission for transitions between states of the 3d and 2p singlet complexes of terms of H2

被引:0
|
作者
S. A. Astashkevich
M. V. Kalachev
B. P. Lavrov
机构
[1] St. Petersburg State University,Physical Department
来源
Optics and Spectroscopy | 2001年 / 90卷
关键词
Spontaneous Emission; Hydrogen Molecule; Radiative Lifetime; Adiabatic Approximation; Transition Dipole Moment;
D O I
暂无
中图分类号
学科分类号
摘要
The ratios of probabilities (the electronic branching ratios) for the rovibronic spontaneous transitions are for the first time measured for transitions from the rotational levels with J′≤6 of the I1Πg−, v′=0–2 and J1Δg−, v′=0 states to the vibrational-rotational levels of different low-lying electronic states B1Σu+, v″, J′ and C1Πu−, v‴, J′−1 of the H2 molecule (for the vibrational quantum numbers v″≤4 and v‴≤2). Values of these quantities provide a new channel of information on the internal structure of the hydrogen molecule thus far unused and should be particularly sensitive to the adiabatic values of the electronic transition dipole moments. In studying the entire set of rovibronic radiative transitions, they may significantly add to the experimental data on rovibronic terms, radiative lifetimes, and vibrational and rotational branching ratios used before. The experimental data obtained are compared to the corresponding values derived from the results of an earlier semiempirical determination and ab initio calculation of the absolute transition probabilities. Our experimental data are in remarkable agreement with the semiempirical results and significantly differ from the ab initio results. This fact directly suggests the necessity of performing more accurate ab initio calculations of the rovibronic transition probabilities for the given systems of bands.
引用
收藏
页码:484 / 492
页数:8
相关论文
共 50 条
  • [1] Electronic branching ratios of spontaneous emission for transitions between states of the 3d and 2p singlet complexes of terms of H2
    Astashkevich, SA
    Kalachev, MV
    Lavrov, BP
    OPTICS AND SPECTROSCOPY, 2001, 90 (04) : 484 - 492
  • [2] ANTICROSSINGS AND MICROWAVE TRANSITIONS BETWEEN ELECTRONIC STATES OF H2
    FREUND, RS
    MILLER, TA
    JOURNAL OF CHEMICAL PHYSICS, 1974, 60 (12): : 4900 - 4908
  • [3] Branching fractions and transition probabilities for transitions from 2p(4) 3p, 2p(4) 3d, and 2p(4) 4s levels of Ne II
    Griesmann, U
    Musielok, J
    Wiese, WL
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA B-OPTICAL PHYSICS, 1997, 14 (09) : 2204 - 2211
  • [4] Transitions between excited electronic states of H2 molecules by electron impact
    Sartori, CS
    da Paixao, FJ
    Lima, MAP
    PHYSICAL REVIEW A, 1998, 58 (04): : 2857 - 2863
  • [5] Laboratory measurements of the relative intensity of the 3s→2p and 3d→2p transitions in Fe XVII
    Beiersdorfer, P
    Behar, E
    Boyce, KR
    Brown, GV
    Chen, H
    Gendreau, KC
    Gu, MF
    Gygax, J
    Kahn, SM
    Kelley, RL
    Porter, FS
    Stahle, CK
    Szymkowiak, AE
    ASTROPHYSICAL JOURNAL, 2002, 576 (02): : L169 - L172
  • [6] PRESSURE EFFECTS ON 2P(5)3P-2P(5)3D TRANSITIONS IN NEON
    TRAWINSKI, RS
    BIELSKI, A
    CIURYLO, R
    SZUDY, J
    ANNALEN DER PHYSIK, 1993, 2 (01) : 1 - 8
  • [7] Spin-flip investigation of the 1s → 2p and 2p → 3d transitions in the Dirac hydrogen atom in terms of the flux-quantization argument
    Saglam, M.
    Boyacioglu, B.
    Saglam, Z.
    JOURNAL OF RUSSIAN LASER RESEARCH, 2007, 28 (04) : 377 - 382
  • [8] Spin-flip investigation of the 1s → 2p and 2p → 3d transitions in the Dirac hydrogen atom in terms of the flux-quantization argument
    M. Saglam
    B. Boyacioglu
    Z. Saglam
    Journal of Russian Laser Research, 2007, 28 : 377 - 382
  • [9] MEASURED BRANCHING RATIOS FOR O-II 2D AND 2P TRANSITIONS IN THE WAVELENGTH RANGE 530-A TO 800-A
    MORRISON, D
    CHRISTENSEN, AB
    CUNNINGHAM, AJ
    JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 1981, 86 (NA5): : 3589 - 3593
  • [10] FINE AND HYPERFINE-STRUCTURE OF 2P AND 3P PI-3(U), STATES OF H2
    LOMBARDI, M
    JOURNAL OF CHEMICAL PHYSICS, 1973, 58 (02): : 797 - 802