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Driving collective current oscillations using light: The time-dependent GW approach

ORAL

Abstract

Electron-electron interactions in solids give rise to longitudinal collective charge excitations known as plasmons, which are observable corresponding to resonances in the density-density response function of the electrons. In this study, we solve the Kadanoff-Baym equations within the non-equilibrium two-time GW approach for sodium metal and demonstrate that current-current interactions can induce a novel type of collective excitation, which we term as "curron." By taking into account the self-consistent interaction between the vector potential generated by electronic currents and the vector potential driving them, we construct a system of interacting currents mediated by vector potentials. We show that this leads to the emergence of a quasiparticle associated with transverse collective current oscillations, corresponding to resonances in the current-current response function.

Presenters

  • Chin Shen Ong

    Uppsala University

Authors

  • Chin Shen Ong

    Uppsala University

  • Denis Golez

    Jožef Stefan Institute and Faculty of Mathematics and Physics, University of Ljubljana, Josef Stefan Institute, Jozef Stefan Institute

  • Angel Rubio

    Max Planck Institute for the Structure & Dynamics of Matter, Max Planck Institute for the Structure & Dynamics of Matter; Flatiron Institute's Center for Computational Quantum Physics (CCQ) & Initiative for Computational Catalysis (ICC)

  • Olle Eriksson

    Uppsala University

  • Hugo U. R. Strand

    Örebro University