Abstract
A simple theory is presented for core-hole polarization probed by resonant photoemission in a two-steps approximation. After excitation from a core level to the valence shell, the core hole decays into two shallower core holes under emission of an electron. The nonspherical core hole and the final state selected cause a specific angle and spin distribution of the emitted electron. The experiment is characterized by the ground-state moments,: the polarization of the light, and the spin and angular distribution of the emitted electron. The intensity is a sum over ground-state expectation values of tensor operators times the probability to create a polarized core hole using polarized light, times the probability for decay of such a core hole into the final state. We give general expressions for the angle- and spin-dependent intensities in various regimes of Coulomb and spin-orbit interaction: LS, LSJ, and jjJ coupling. The core-polarization analysis, which generalizes the use of sum rules in x-ray absorption spectroscopy where the integrated peak intensities give ground-state expectation values of the spin and orbital moment operators, makes it possible to measure different linear combinations of these operators. As an application the 2p(3/2)3p3p decay in ferromagnetic nickel is calculated using Hartree-Fock values for the radial matrix elements and phase factors, and compared with experiment, the dichroism is smaller in the P-3 final state but stronger in the D-1, S-1 peak.
Original language | English |
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Pages (from-to) | 15355-15363 |
Number of pages | 9 |
Journal | Physical Review. B: Condensed Matter and Materials Physics |
Volume | 52 |
Issue number | 21 |
Publication status | Published - 1-Dec-1995 |
Keywords
- RAY CIRCULAR-DICHROISM
- AUGER ELECTRONS
- ANGULAR-DISTRIBUTION
- PHOTOIONIZATION
- PROBE
- IONIZATION
- SCATTERING