We characterize the topological insulator Bi2Se3 using time- and angle- resolved photoemission spectroscopy. By employing two-photon photoemission, a complete picture of the unoccupied electronic structure from the Fermi level up to the vacuum level is obtained. We demonstrate that the unoccupied states host a second, Dirac surface state which can be resonantly excited by 1.5 eV photons. We then study the ultrafast relaxation processes following optical excitation. We find that they culminate in a persistent non-equilibrium population of the first Dirac surface state, which is maintained by a meta-stable population of the bulk conduction band. Finally, we perform a temperature-dependent study of the electron-phonon scattering processes in the conduction band, and find the unexpected result that their rates decrease with increasing sample temperature. We develop a model of phonon emission and absorption from a population of electrons, and show that this counter-intuitive trend is the natural consequence of fundamental electron-phonon scattering processes. This analysis serves as an important reminder that the decay rates extracted by time-resolved photoemission are not in general equal to single electron scattering rates, but include contributions from filling and emptying processes from a continuum of states.
@article{arxiv.1401.3078,
title = {Ultrafast Electron Dynamics in the Topological Insulator Bi2Se3 Studied by Time-Resolved Photoemission Spectroscopy},
author = {Jonathan A. Sobota and Shuolong Yang and Dominik Leuenberger and Alexander F. Kemper and James G. Analytis and Ian R. Fisher and Patrick S. Kirchmann and Thomas P. Devereaux and Zhi-Xun Shen},
journal= {arXiv preprint arXiv:1401.3078},
year = {2014}
}
Comments
In Press: Journal of Electron Spectroscopy & Related Phenomena (special issue on 2-photon photoemission spectroscopy)