Experimental and Theoretical Fully differential cross sections for electron impact ionization of furfuryl molecules

ORAL

Abstract

Experimental and theoretical Fully Differential Cross Sections (FDCS) are presented for 250 eV electron impact ionization of the highest and next highest occupied molecular orbitals (HOMO and NHOMO). Theoretical results are compared with experiment for in plane scattering with projectile scattering angles of $5^{\circ}$, $10^{\circ}$, and $15^{\circ}$. Different theoretical models are examined - the molecular 3 body distorted wave (M3DW), and the distorted wave Born approximation (DWBA), with the effects of the post collision interaction (PCI) treated either exactly or with the Ward-Macek approximations. These approximations show good agreement with experimental data for binary peaks. However, for the recoil peak region, experiment finds a noticeable peak while theory predicts no peak. No recoil peak suggests no (or very weak) nuclear scattering, so we have investigated the importance of nuclear scattering by moving the nuclei closer to the center of mass.

*This work is supported by the US National Science Foundation under Grant.No.PHY-1068237 and XSEDE resources provided by the Texas Advanced Computing Center (Grant No. TG-MCA07S029).

Authors

  • Esam Ali

    • Missouri Univ of Sci \& Tech
  • Darryl Jones

    • School of Chemical and Physical Sciences, Flinders University
  • Kate Nixon

    • Universidade Federal de Juiz de Fora, Brazil
    • Universidade Federal de Juiz de Fora
  • Chuangang Ning

    • Tsinghua University, Beijing, China
  • Michael Brunger

    • School of Chemical and Physical Sciences, Flinders University
  • Andrew Murray

    • The University of Manchester
  • Don Madison

    • Missouri Univ of Sci \& Tech
    • Missouri S\&T