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February 20, 20260 citationsOpen Access

Theory of nonlinear electron relaxation in thin gold films and their signatures in optical observables

JGJonas GrummMSMalte SeligHLHolger Lange

Key Points

  • This research aims to explore the dynamics of conduction electrons in thin gold films under optical excitations.
  • Used momentum-resolved Boltzmann equation for numerical calculations
  • Focused on electron-phonon interaction
  • Analyzed linear and nonlinear optical excitations at infrared and terahertz frequencies
  • Introduced orientational relaxation as a dephasing mechanism
  • Modeled optical behaviors using the Drude model
  • Validated numerical results in the linear regime with experimental data fitting
  • Predicted an increase in orientational relaxation rate for nonlinear excitations
  • Identified a new high-order Kerr-type nonlinearity in the THz regime
  • Observed nonlinearly increasing film transmission, detectable in experiments

Abstract

Based on the momentum-resolved Boltzmann equation, we provide self-consistent numerical calculations of the dynamics of conduction electrons in thin noble metal films after linear and nonlinear optical excitations with infrared and terahertz frequencies. Focusing exclusively on electron-phonon interaction, orientational relaxation is introduced and acts as dephasing of the optical excitation on a scale of tens of fs. In the linear regime, our numerical results agree with the field-strength-independent orientational relaxation rate and correspondingly fits of experimental data to a Drude model and predict for nonlinear excitations a field-strength-dependent increase of the orientational relaxation rate. In the THz regime, where the orientational relaxation proceeds faster than the oscillation cycle of the excitation THz field, a new high-order dissipative Kerr-type nonlinearity is predicted. This nonlinearity originates from the Pauli blocking included in the electron-phonon scattering and results in a nonlinearly increasing transmission of the film, detectable in experiments.

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Cite This Study

Grumm et al. (2025) studied this question.

synapsesocial.com/papers/6997fa80ad1d9b11b3453bf3https://doi.org/10.14279/depositonce-25191
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