English

Bulk photogalvanic current control and gap spectroscopy in 2D hexagonal materials

Materials Science 2025-09-09 v1 Optics

Abstract

Two-dimensional (2D) hexagonal materials have been intensively explored for multiple optoelectronic applications such as spin current generation, all-optical valleytronics, and topological electronics. In the realm of strong-field and ultrafast light-driven phenomena, it was shown that tailored laser driving such as polychromatic or few-cycle pulses can drive robust bulk photogalvanic (BPG) currents originating from the K/K' valleys. We here explore the BPG effect in 2D systems in the strong-field regime and show that monochromatic elliptical pulses also generically generate such photocurrents. The resultant photocurrents exhibit both parallel and transverse (Hall-like) components, both highly sensitive to the laser parameters, providing photocurrent control knobs. Interestingly, we show that the photocurrent amplitude has a distinct behavior vs. the driving ellipticity that can be indicative of material properties such as the gap size at K/K', which should prove useful for novel forms of BPG-based spectroscopies. We demonstrate these effects also in benchmark ab-initio simulations in monolayer hexagonal boron-nitride. Our work establishes new paths for controlling photocurrent responses in 2D systems that can also be used for multi-dimensional spectroscopy of ultrafast material properties through photocurrent measurements.

Cite

@article{arxiv.2504.14236,
  title  = {Bulk photogalvanic current control and gap spectroscopy in 2D hexagonal materials},
  author = {Anna Galler and Ofer Neufeld},
  journal= {arXiv preprint arXiv:2504.14236},
  year   = {2025}
}
R2 v1 2026-06-28T23:04:09.762Z