English

Establishing non-thermal regimes in pump-probe electron-relaxation dynamics

Materials Science 2020-12-02 v1

Abstract

Time- and angle-resolved photoemission spectroscopy (TR-ARPES) accesses the electronic structure of solids under optical excitation, and is a powerful technique for studying the coupling between electrons and collective modes. One approach to infer electron-boson coupling is through the relaxation dynamics of optically-excited electrons, and the characteristic timescales of energy redistribution. A common description of electron relaxation dynamics is through the effective electronic temperature. Such a description requires that thermodynamic quantities are well-defined, an assumption that is generally violated at early delays. Additionally, precise estimation of the non-thermal window -- within which effective temperature models may not be applied -- is challenging. We perform TR-ARPES on graphite and show that Boltzmann rate equations can be used to calculate the time-dependent electronic occupation function, and reproduce experimental features given by non-thermal electron occupation. Using this model, we define a quantitative measure of non-thermal electron occupation and use it to define distinct phases of electron relaxation in the fluence-delay phase space. More generally, this approach can be used to inform the non-thermal-to-thermal crossover in pump-probe experiments.

Keywords

Cite

@article{arxiv.2009.05057,
  title  = {Establishing non-thermal regimes in pump-probe electron-relaxation dynamics},
  author = {MengXing Na and Fabio Boschini and Arthur K. Mills and Matteo Michiardi and Ryan P. Day and Berend Zwartsenberg and Giorgio Levy and Sergey Zhdanovich and Alexander F. Kemper and David J. Jones and Andrea Damascelli},
  journal= {arXiv preprint arXiv:2009.05057},
  year   = {2020}
}

Comments

18 pages, 10 figures