On the quenching of helium 2 3S: Potential energy curves for, and nonadiabatic, relativistic, and radiative couplings between, the a 3Σ+u, A 1Σ+u, b 3Πg, B 1Πg, c 3Σ+g, and C 1Σ+g states of He2
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- Type
- article
- Published
- 1989-06-15
- Cited by
- 37
- References
- 24
- OpenAlex
- https://openalex.org/W1984536632
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:93167713
Keywords
Atomic physics, Physics, Radiative transfer, Excited state, Dipole
References
- Potential‐Energy Curves for the He2 Molecule
- General second‐order MCSCF theory for large CI expansions
- Nature of excited helium atoms in liquid helium: A theoretical model
- On the use of the Breit–Pauli approximation for evaluating line strengths for spin‐forbidden transitions: Application to NF
- On the characterization of the dipolar spin-spin interaction in molecular systems: A symbolic matrix element approach
- Potential energy curves for the a 3Σu+ and c 3Σ+g states of He2 consistent with differential scattering, ab initio theory, and low‐temperature exchange rates
- Accurate calculation of the attractive interaction of two ground state helium atoms
- Theoretical study of the radiative lifetime for the spin‐forbidden transition a 3Σ+u→X 1Σ+g in He2
- SPECTROSCOPIC IDENTIFICATION OF EXCITED ATOMIC AND MOLECULAR STATES IN ELECTRON-BOMBARDED LIQUID HELIUM.
- The electronic and vibrational energies of two double‐welled 3Σ+u states of He2
- Potential energy curves for the A 1Σ+u and C 1Σ+g states of He2 obtained by combining scattering, spectroscopy, and ab initio theory
- Spectrum and structure of the He2 molecule VI. Characterization of the states associated with the UAO's 3pπ and 2s ☆
- Theoretical investigation of the a 3Σ+u, A 1Σ+u, c 3Σ+g, and C 1Σ+g potential energy curves of He2 and of He*(2 1S, 2 3S)+He scattering
- Nature of the excited states of He 2
- Spectrum and Structure of the He2 Molecule. I. Characterization of the States Associated with the UAO's 3pσ and 2s
- LIQUID HELIUM CONFIGURATION AROUND A METASTABLE EXCITED HELIUM ATOM.
- On the evaluation of non‐Born–Oppenheimer interactions for Born–Oppenheimer wave functions. V. A body fixed frame approach. Applications to isotope effects on equilibrium geometries and the adiabatic correction for the X 1Σ+ state of LiH
- The alchemy configuration interaction method. I. The symbolic matrix method for determining elements of matrix operators
- A self‐consistent eikonal treatment of electronic transitions in molecular collisions
- The low‐lying 2Σ− states of OH
Cited by
- Structure and dynamics of the He2*(a3Σu+ molecular complex in condensed phases of helium
- Predissociation of the b3Πg (v = 9) State of He2 Excimer
- Properties of dimers
- Fine structure of the lowest triplet states in He2
- UV emission from excited inert-gas molecules
- The Low-Lying States of He2.
- Fine structure and radiative lifetime of the low-lying triplet states of the helium excimer
- A new method for enhancing the production of the negatively charged helium dimer He2
- The extended Koopmans' theorem: vertical ionization potentials from natural orbital functional theory.
- The extended Koopmans’ theorem and its exactness
- Absorption spectra from high vibrational levels of He2
- Lifetime determination of the long-lived B 1Πg state in He2* by photofragment spectroscopy
- Multiple activation energies for conversion of He(2 3S) atoms to He2(a 3Σu +) molecules in ternary collisions
- Laser-induced fluorescence studies of elementary processes in a helium plasma following He 3 3P-2 3S and 3 1P-2 1S excitation
- Low energy electron collisions with He2+ molecules
- Calculation of the fine structure and intensity of the singlet-triplet transitions in the imidogen radical.
- Theoretical study of the A state of helium dimer
- Time-resolved vacuum-ultraviolet emission (λ = 60–120 nm) from a high pressure DBD-excited helium plasma: formation mechanisms of the fast component
- Elucidation of reaction mechanisms responsible for afterglow and reagent-ion formation in the low-temperature plasma probe ambient ionization source.
- Monitoring the removal of excited particles in He/Ar/H2 low temperature afterglow plasma at 80–300 K
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