Welcome to the new version of CaltechAUTHORS. Login is currently restricted to library staff. If you notice any issues, please email coda@library.caltech.edu
Published December 1, 1991 | Published
Journal Article Open

Rotational branching ratios and photoelectron angular distributions in resonance enhanced multiphoton ionization of HBr via the F ^1Δ_2 Rydberg state

Abstract

Results of theoretical studies of rotational ion distributions in the X ^2Π_(1/2) ground state of HB^r+ resulting from (2+1) resonance enhanced multiphoton ionization (REMPI) via the S(2) branch of the F ^1Δ_2 Rydberg state are reported. These results show a strongly parity‐favored ion distribution with about 80% population in the (−) component of the Λ doublet of J^+ rotational levels. The 20% population in the other parity component of the Λ doublet can be seen to be due to odd partial wave contributions to the photoelectron matrix elements which arise primarily from non‐atomic‐like behavior of the electronic continuum. This, in turn, is due to angular momentum coupling in the photoelectron orbital brought about by the torques of the nonspherical molecular ion potential. We demonstrate that the effect of alignment on these ion distributions, although not large, is important. Photoelectron angular distributions and alignment of the J levels of the HBr^+ ions are also presented. Rotational branching ratios and photoelectron angular distributions resulting from (2+1') REMPI of HBr via several S branches of the F ^1Δ_2 state are also shown for near‐threshold photoelectron energies.

Additional Information

© 1991 American Institute of Physics. (Received 11 July 1991; accepted 27 August 1991) This work was supported by grants from the National Science Foundation, Air Force Office of Scientific Research, and the Office of Health and Environmental Research of the U.S. Department of Energy. We acknowledge use of resources of the IPL/Caltech CRAY X-MP/18 Supercomputer. We also thank Dr. Jinchun Xie and Professor Richard Zare for kindly making their experimental data available to us prior to publication.

Attached Files

Published - 1.461316.pdf

Files

1.461316.pdf
Files (985.9 kB)
Name Size Download all
md5:d8ba2565e834e22713e9ff27445ce642
985.9 kB Preview Download

Additional details

Created:
August 20, 2023
Modified:
October 25, 2023