Inconsistency of the photoemission spectrum with the spectral function in Kondo systems
S. Patil, A. Generalov, A. Omar

TL;DR
This paper investigates the inconsistency between the predicted spectral function in Kondo systems and actual photoemission spectra, revealing a uniform temperature dependence of features and proposing a wave function collapse explanation.
Contribution
It challenges the traditional interpretation of Kondo resonance features and introduces a new perspective based on wave function collapse during photoemission measurements.
Findings
Observed uniform temperature dependence of Ce4f features in CeAl2
Questioned the resonance interpretation of 4f1 final state features
Proposed wave function collapse as an explanation for spectral evolution
Abstract
Kondo effect is an example of asymptotic freedom where the antiferromagnetic coupling between a localized magnetic moment and valence electrons, increases with reducing temperature. The electronic spectral function for such a system predicts a narrow Kondo resonance close to Fermi energy below its Kondo temperature 'TK'. The internal energy level structure of the localized magnetic moment introduces sidebands near the Kondo resonance, each with its respective Kondo temperature increasing as the sideband position moves towards higher binding energies. Consequently, the temperature dependence of the resonance features becomes weaker as we go towards higher binding energies. Here, we show a Ce4f photoemission spectral evolution obtained from a prototypical Kondo system CeAl2, departing from the predictions of the spectral function. Our measurements reveal a uniform temperature dependence…
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Taxonomy
TopicsRare-earth and actinide compounds · Advanced Chemical Physics Studies · Quantum and electron transport phenomena
