Ionization of helium by slow antiproton impact: total and differential cross sections
arXiv:1409.1379 · doi:10.1103/PhysRevA.90.052706
Abstract
We theoretically investigate the single and double ionization of the He atom by antiproton impact for projectile energies ranging from ~keV up to ~keV. We obtain accurate total cross sections by directly solving the fully correlated two-electron time-dependent Schrödinger equation and by performing classical trajectory Monte-Carlo calculations. The obtained quantum-mechanical results are in excellent agreement with the available experimental data. Along with the total cross sections, we also present the first fully \textit{ab initio} doubly differential data for single ionization at 10 and 100~keV impact energies. In these differential cross sections we identify the binary-encounter peak along with the anticusp minimum. Furthermore, we also point out the importance of the post-collisional electron-projectile interaction at low antiproton energies which significantly suppresses electron emission in the forward direction.