Rotationally resolved photoelectron spectroscopy of the 2Σ− Rydberg states of OH: The role of Cooper minima
- 1 July 1991
- journal article
- letter
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 95 (1) , 714-716
- https://doi.org/10.1063/1.461423
Abstract
We have measured rotationally resolved photoelectron spectra of the OH radical using (2+1) resonance enhanced multiphoton ionization spectroscopy via the D 2Σ−(3pσ) and 3 2Σ−(4sσ) Rydberg states. For the D 2Σ−(3pσ) state, we observe primarily ΔN=even distributions of ionic rotational states, in contrast to the ΔN=odd distribution expected for ionization of a 3pσ Rydberg electron. The observations are described quantitatively by ab initio calculations which predict a Cooper minimum in the 3pσ→kπ(l=2) channel, whose occurrence determines the ΔN=even ion rotational distribution. In contrast, the 3 2Σ−(4sσ) photoelectron spectra reveal a broad distribution in rotational levels, arising from greater l mixing in the higher Rydberg orbital and much weaker Cooper minima in the continuum.Keywords
This publication has 17 references indexed in Scilit:
- Cooper minima and rotationally resolved resonance enhanced multiphoton ionization spectroscopyThe Journal of Chemical Physics, 1989
- Non-Franck-Condon Effects Induced by Orbital Evolution and Cooper Minima in Excited-State Photoionization of OHPhysical Review Letters, 1989
- High-resolution zero-kinetic-energy photoelectron spectroscopy of nitric oxidePhysical Review A, 1987
- Photoionization of molecular Rydberg states: H2, C 1Πu and its doubly excited statesThe Journal of Chemical Physics, 1987
- sanddRydberg series of NO probed by double resonance multiphoton ionizationMolecular Physics, 1987
- Rotationally resolved laser photoelectron spectra of gas-phase NO: rotational propensity rules in photoionizationThe Journal of Physical Chemistry, 1986
- Ionic rotational selection rules for (n + 1) resonant enhanced multiphoton ionizationChemical Physics Letters, 1986
- Photoionization of excited molecular states. H2 C 1ΠuChemical Physics Letters, 1984
- Photodissociation processes in the OH moleculeThe Journal of Chemical Physics, 1983
- The state distribution of OH radicals photodissociated from H2O2 at 193 and 248 nmThe Journal of Chemical Physics, 1983