Strong-field-driven dissociation dynamics in CO<sub>2</sub><sup>+</sup>
POSTER
Abstract
We theoretically investigated strong-field XUV-IR pump-probe dissociative ionization of CO2 in full dimensionality by solving in full (3D) dimensionality the coupled-channel Schrödinger equation for the nuclear motion on five coupled Oppenheimer (BO) potential-energy surfaces. Including ab initio calculated non-BO coupling, laser dipole, and spin-orbit couplings calculated using a multi-configurational self-consistent-field quantum-chemistry code, we provide kinetic energy release (KER) spectra for the O(3Pg) + CO+( X2Σ+) and O+(4Su) + CO(X1Σ+) dissociation channels and their branching ratio. Our KER spectra identify the ro-vibrational excitations of CO+ fragments along a dominant 3ω dissociation paths. Mediated by the nuclear dynamics near a A2Πu and B2Σu+ conical intersection and in good agreement with the experiment of Timmers et al., Phys. Rev. Lett. 113, 113003 (2014), we reproduce a core-hole oscillation period 115 fs. In addition, we find and race as due to quantum beats between specific pairs of vibration and electronic CO2+ states a slower oscillations 62 fs in the CO+ fragmentation channel.
Presenters
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Hung V Hoang
Department of Physics, Kansas State University, Kansas State University
Authors
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Hung V Hoang
Department of Physics, Kansas State University, Kansas State University
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Uwe Thumm
Kansas State University