The doubly excited states of the H2 molecule
I. Sánchez, Fernando Martı́n
Abstract
I. Sánchez, Fernando Martı́n
Abstract
We report extensive calculations of energy positions and autoionization widths for the doubly excited states of H2 between the first and the second ionization thresholds. We present results for 60 doubly excited states of the Σg,u+1,3, Πg,u1,3, and Δg,u1,3 symmetries in the range of internuclear distances 0⩽R⩽5 a.u. The resonance parameters have been obtained using the Feshbach theory and an L2 representation of the non resonant continuum with B-spline functions. We discuss the main features of the energy correlation diagrams and the corresponding widths. We point out the existence of avoided crossings in the Franck–Condon region that significantly affect the autoionization properties of the doubly excited states. Our data are compared with previous results reported in the literature.
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We report extensive calculations of energy positions and autoionization widths for the doubly excited states of H2 between the first and the second ionization thresholds. We present results for 60 doubly excited states of the Σg,u+1,3, Πg,u1,3, and Δg,u1,3 symmetries in the range of internuclear distances 0⩽R⩽5 a.u. The resonance parameters have been obtained using the Feshbach theory and an L2 representation of the non resonant continuum with B-spline functions. We discuss the main features of the energy correlation diagrams and the corresponding widths. We point out the existence of avoided crossings in the Franck–Condon region that significantly affect the autoionization properties of the doubly excited states. Our data are compared with previous results reported in the literature.
Key concepts: Autoionization, Excited state, Atomic physics, Ionization, Physics, Multireference configuration interaction, Chemistry, Resonance (particle physics)