Two-colour coherent control of nuclear and electron dynamics in photoionization of molecular hydrogen with FEL pulses
Fabian Holzmeier, Alberto Gonzalez-Castrillo, Thomas M. Baumann, Roger Y. Bello, Carlo Callegari, Michele Di Fraia, Matteo Lucchini, Michael Meyer, Oksana Plekan, Kevin C. Prince, Eleonore Roussel, Rene Wagner, Fernando Martin, Alicia Palacios, Danielle Dowek

TL;DR
This study demonstrates two-color coherent control of nuclear and electron dynamics in molecular hydrogen using FEL pulses, revealing phase-dependent ionization pathways and advancing control over molecular reactions.
Contribution
It extends $ ext{ω}$-$2 ext{ω}$ control schemes to molecules, showing phase manipulation of ionization pathways and coupled electron-nuclear dynamics at FELs.
Findings
Phase jumps depend on photoelectron energy and vibrational states.
Accurate calculations assign phase jumps to coupled electronic and nuclear dynamics.
The work establishes fundamental concepts for controlling molecular dynamics with FELs.
Abstract
The extension of coherent - control schemes, recently implemented in free-electron lasers (FELs), to molecular systems offers new opportunities to control chemical dynamics on the electronic timescale, potentially allowing for the steering of reactions along previously inaccessible pathways. We have implemented such a scheme at the seeded FERMI FEL to retrieve the relative phases between one-photon (frequency ) and two-photon (frequency ) ionization paths in the hydrogen molecule as a function of photoelectron energy and emission angle. The narrow bandwidth of the XUV pulses enables selective excitation of vibrational levels of neutral intermediate H states in the two-photon ionization path. Here we focus on -- ionization of H into the H ground state involving the…
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