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Tracking electron motion within and outside of Floquet bands from attosecond pulse trains in time-resolved ARPES

Ofer Neufeld, Hannes Hübener, Umberto De Giovannini, Angel Rubio

Research output: Contribution to journalArticlepeer-review

Abstract

Floquet engineering has recently emerged as a technique for controlling material properties with light. Floquet phases can be probed with time- and angle-resolved photoelectron spectroscopy (Tr-ARPES), providing direct access to the laser-dressed electronic bands. Applications of Tr-ARPES to date focused on observing the Floquet-Bloch bands themselves, and their build-up and dephasing on sub-laser-cycle timescales. However, momentum and energy resolved sub-laser-cycle dynamics between Floquet bands have not been analyzed. Given that Floquet theory strictly applies in time-periodic conditions, the notion of resolving sub-laser-cycle dynamics between Floquet states seems contradictory—it requires probe pulse durations below a laser cycle that inherently cannot discern the time-periodic nature of the light-matter system. Here we propose to employ attosecond pulse train probes with the same temporal periodicity as the Floquet-dressing pump pulse, allowing both attosecond sub-laser-cycle resolution and a proper projection of Tr-ARPES spectra on the Floquet–Bloch bands. We formulate and employ this approach in ab-initio calculations in light-driven graphene. Our calculations predict significant sub-laser-cycle dynamics occurring within the Floquet phase with the majority of electrons moving within and in-between Floquet bands, and a small portion residing and moving outside of them in what we denote as ‘non-Floquet’ bands. We establish that non-Floquet bands arise from the pump laser envelope that induces non-adiabatic electronic excitations during the pulse turn-on and turn-off.

poly-chromatic pumps we also show that Floquet states are not formed on a sub-laser-cycle level. This work indicates that the Floquet-Bloch states are generally not a complete basis set for sub-laser-cycle dynamics in steady-state phases of matter.

Original languageEnglish
Article number225401
JournalJournal of Physics Condensed Matter
Volume36
Issue number22
DOIs
StatePublished - 5 Jun 2024
Externally publishedYes

Keywords

  • ARPES
  • TDDFT
  • attosecond science
  • floquet
  • nonlinear optics
  • ultrafast spectroscopy

All Science Journal Classification (ASJC) codes

  • General Materials Science
  • Condensed Matter Physics

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