Nuclear-Electronic Coherence in Strong-Field Dissociative Ionization

POSTER

Abstract

In strong-field dissociative ionization of molecules, the ionization step is usually modeled since direct calculation is very challenging. In most of the models used to date, ionization is assumed to occur at several well-defined times accompanied by promotion of a nuclear wave packet to the ionic Born-Oppenheimer potential. Whether these nuclear wave packets should add coherently or incoherently in general is an open question. To answer it, we solve the time-dependent Schr\"odinger equation for one-dimensional H$_2^+$, where ionization is included naturally, and compare the observables, such as the kinetic energy release spectrum, with those from an ionization model. We then examine the validity of such models in strong-field dissociative ionization of H$_2^+$ with reduced dimensionality. We do not, however, expect this physics to depend sensitively on the dimensionality.

*Supported by the Chemical Sciences, Geosciences, and Biosciences Division, Office of Basic Energy Sciences, Office of Science, U.S. Department of Energy

Authors

  • Youliang Yu

    • J. R. Macdonald Laboratory, Kansas State University
  • Yujun Wang

    • Kansas State University
    • J. R. Macdonald Laboratory, Kansas State University
    • J. R. Macdonald Laboratory, Department of Physics, Kansas State University
    • Department of Physics, Kansas State University, Manhattan, Kansas, 66506
  • Shuo Zeng

    • J. R. Macdonald Laboratory, Kansas State University
  • B.D. Esry

    • Kansas State University
    • J. R. Macdonald Laboratory, Department of Physics, Kansas State University, Manhattan, KS USA 66506
    • J.R. Macdonald Laboratory, Physics Department, Kansas State University, Manhattan, Kansas 66506, USA
    • J. R. Macdonald Laboratory, Kansas State University, Manhattan, KS 66506, USA
    • J. R. Macdonald Laboratory, Kansas State University
    • J. R. Macdonald Laboratory, Department of Physics, Kansas State University