Kondo coherence versus superradiance in THz radiation-driven heavy-fermion systems

Fuente: arXiv
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Autores principales: Yang, Chia-Jung, Woerner, Michael, Stockert, Oliver, Loehneysen, Hilbert v., Kroha, Johann, Fiebig, Manfred, Pal, Shovon
Formato: Preprint
Publicado: 2023
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author Yang, Chia-Jung
Woerner, Michael
Stockert, Oliver
Loehneysen, Hilbert v.
Kroha, Johann
Fiebig, Manfred
Pal, Shovon
author_facet Yang, Chia-Jung
Woerner, Michael
Stockert, Oliver
Loehneysen, Hilbert v.
Kroha, Johann
Fiebig, Manfred
Pal, Shovon
contents In strongly correlated systems such as heavy-fermion materials, the coherent superposition of localized and mobile spin states leads to the formation of Kondo resonant states, which on a dense, periodic array of Kondo ions develop lattice coherence. Characteristically, these quantum-coherent superposition states respond to a terahertz (THz) excitation by a delayed THz pulse on the scale of the material's Kondo energy scale and, hence, independent of the pump-light intensity. However, delayed response is also typical for superradiance in an ensemble of excited atoms. In this case, quantum coherence is established by the coupling to an external, electromagnetic mode and, hence, dependent on the pump-light intensity. In the present work, we investigate the physical origin of the delayed pulse, i.e., inherent, correlation-induced versus light-induced coherence, in the prototypical heavy-fermion compound CeCu_5.9Au_0.1. We study the delay, duration and amplitude of the THz pulse at various temperatures in dependence on the electric-field strength of the incident THz excitation, ranging from 0.3 to 15.2 kV/cm. We observe a robust delayed response at approximately 6 ps with an amplitude proportional to the amplitude of the incident THz wave. This is consistent with theoretical expectation for the Kondo-like coherence and thus provides compelling evidence for the dominance of condensed-matter versus optical coherence in the heavy-fermion compound.
format Preprint
id arxiv_https___arxiv_org_abs_2312_06931
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Kondo coherence versus superradiance in THz radiation-driven heavy-fermion systems
Yang, Chia-Jung
Woerner, Michael
Stockert, Oliver
Loehneysen, Hilbert v.
Kroha, Johann
Fiebig, Manfred
Pal, Shovon
Strongly Correlated Electrons
In strongly correlated systems such as heavy-fermion materials, the coherent superposition of localized and mobile spin states leads to the formation of Kondo resonant states, which on a dense, periodic array of Kondo ions develop lattice coherence. Characteristically, these quantum-coherent superposition states respond to a terahertz (THz) excitation by a delayed THz pulse on the scale of the material's Kondo energy scale and, hence, independent of the pump-light intensity. However, delayed response is also typical for superradiance in an ensemble of excited atoms. In this case, quantum coherence is established by the coupling to an external, electromagnetic mode and, hence, dependent on the pump-light intensity. In the present work, we investigate the physical origin of the delayed pulse, i.e., inherent, correlation-induced versus light-induced coherence, in the prototypical heavy-fermion compound CeCu_5.9Au_0.1. We study the delay, duration and amplitude of the THz pulse at various temperatures in dependence on the electric-field strength of the incident THz excitation, ranging from 0.3 to 15.2 kV/cm. We observe a robust delayed response at approximately 6 ps with an amplitude proportional to the amplitude of the incident THz wave. This is consistent with theoretical expectation for the Kondo-like coherence and thus provides compelling evidence for the dominance of condensed-matter versus optical coherence in the heavy-fermion compound.
title Kondo coherence versus superradiance in THz radiation-driven heavy-fermion systems
topic Strongly Correlated Electrons
url https://arxiv.org/abs/2312.06931