Electric and spin-valley currents induced by structured light in 2D Dirac materials

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Main Authors: Gunyaga, A. A., Durnev, M. V., Tarasenko, S. A.
Format: Preprint
Published: 2025
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author Gunyaga, A. A.
Durnev, M. V.
Tarasenko, S. A.
author_facet Gunyaga, A. A.
Durnev, M. V.
Tarasenko, S. A.
contents Structured optical fields can be used for the injection and control of charge and spin-valley currents. Here, we present a systematical study of these phenomena for interband absorption of structured light in 2D Dirac materials. We derive general expressions for the current density and the quasi-classical generation rate of photoelectrons in the momentum, coordinate, and spin-valley spaces. We reveal mechanisms of the current formation determined by the local and non-local contributions to the optical generation, including the mechanisms related to optical alignment of electron momenta by linearly polarized light, optical orientation by circularly polarized light, and the class of charge and spin-valley photon drags sensitive to the phase and polarization profiles of the optical field. We develop a kinetic theory of electric and spin-valley currents driven by the optical field with spatially inhomogeneous intensity, polarization, and phase and obtain analytical expressions for the current contributions. The theory is applied to analyze the photocurrents emerging in TMDC layers and graphene excited by polarization gratings.
format Preprint
id arxiv_https___arxiv_org_abs_2512_11677
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Electric and spin-valley currents induced by structured light in 2D Dirac materials
Gunyaga, A. A.
Durnev, M. V.
Tarasenko, S. A.
Mesoscale and Nanoscale Physics
Structured optical fields can be used for the injection and control of charge and spin-valley currents. Here, we present a systematical study of these phenomena for interband absorption of structured light in 2D Dirac materials. We derive general expressions for the current density and the quasi-classical generation rate of photoelectrons in the momentum, coordinate, and spin-valley spaces. We reveal mechanisms of the current formation determined by the local and non-local contributions to the optical generation, including the mechanisms related to optical alignment of electron momenta by linearly polarized light, optical orientation by circularly polarized light, and the class of charge and spin-valley photon drags sensitive to the phase and polarization profiles of the optical field. We develop a kinetic theory of electric and spin-valley currents driven by the optical field with spatially inhomogeneous intensity, polarization, and phase and obtain analytical expressions for the current contributions. The theory is applied to analyze the photocurrents emerging in TMDC layers and graphene excited by polarization gratings.
title Electric and spin-valley currents induced by structured light in 2D Dirac materials
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2512.11677