Relaxation of photo-excited hot carriers beyond multi-temperature models: General theory description verified by experiments on Pb/Si(111)
arXiv:2205.04958 · doi:10.1103/PhysRevResearch.4.033218 10.1103/PhysRevResearch.4.033218
Abstract
The equilibration of electronic carriers in metals after excitation by an ultra-short laser pulse provides an important class of non-equilibrium phenomena in metals and allows measuring the effective electron-phonon coupling parameter. Since the observed decay of the electronic distribution is governed by the interplay of both electron-electron and electron-phonon scattering, the interpretation of experimental data must rely on models that ideally should be easy to handle, yet accurate. In this work, an extended rate-equation model is proposed that explicitly includes non-thermal electronic carriers while at the same time incorporating data from first-principles calculations of the electron-phonon coupling via Eliashberg-Migdal theory. The model is verified against experimental data for thin Pb films grown on Si(111). Improved agreement between theory and experiment at short times (<0.3ps) due to non-thermal electron contributions is found. Moreover, the rate equations allow for widely different coupling strength to different phonon subsystems. Consequently, an indirect, electron-mediated energy transfer between strongly and weakly coupled groups of phonons can be observed in the simulations that leads to a retarded equilibration of the subsystems only after several picoseconds.
11 pages, 6 figures
References in corpus (4)
- Electron relaxation in metals: Theory and exact analytical solutions
- Theory of Out-of-Equilibrium Ultrafast Relaxation Dynamics in Metals
- Ultrafast dynamics of electrons and phonons: from the two-temperature model to the time-dependent Boltzmann equation
- Accessing the anisotropic non-thermal phonon populations in black phosphorus