Photogalvanic currents from first-principles real-time density-matrix dynamics

Fuente: arXiv
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Auteurs principaux: Yu, Junting, Grieder, Andrew, Simoni, Jacopo, Sundararaman, Ravishankar, Alexandradinata, Aris, Ping, Yuan
Format: Preprint
Publié: 2026
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author Yu, Junting
Grieder, Andrew
Simoni, Jacopo
Sundararaman, Ravishankar
Alexandradinata, Aris
Ping, Yuan
author_facet Yu, Junting
Grieder, Andrew
Simoni, Jacopo
Sundararaman, Ravishankar
Alexandradinata, Aris
Ping, Yuan
contents The photogalvanic effect is the generation of a second-order direct current by illumination of a non-centrosymmetric material. In this work, we develop a first-principles real-time density matrix (FPDMD) formalism enabling the calculations of the photogalvanic current in all time regimes: transient and steady. Unlike past \textit{ab-initio} studies which focused only on the photo-excitation process, our first-principles theory framework encodes all quantum scatterings (intra/interband relaxation and electron-hole recombination) mediated by bosons (photons and phonons), and is thus predictive of photogalvanic currents in realistic materials. In particular, for the linear photogalvanic effect, we find electron scatterings mediated by phonons contribute significantly to the shift current for prototypical piezoelectrics like BaTiO$_3$. For the circular photogalvanic effect, we develop a self-consistent theory of a steady injection current that incorporates realistic scattering mediated by phonons. Our formulation developed for photogalvanic current elucidates its connection with fundamental quantum-geometric quantities such as the Berry curvature and the quantum metric. A phonon-based explanation is proposed for the bipolar transient photogalvanic current observed by the THz emission spectroscopy.
format Preprint
id arxiv_https___arxiv_org_abs_2601_01059
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Photogalvanic currents from first-principles real-time density-matrix dynamics
Yu, Junting
Grieder, Andrew
Simoni, Jacopo
Sundararaman, Ravishankar
Alexandradinata, Aris
Ping, Yuan
Materials Science
The photogalvanic effect is the generation of a second-order direct current by illumination of a non-centrosymmetric material. In this work, we develop a first-principles real-time density matrix (FPDMD) formalism enabling the calculations of the photogalvanic current in all time regimes: transient and steady. Unlike past \textit{ab-initio} studies which focused only on the photo-excitation process, our first-principles theory framework encodes all quantum scatterings (intra/interband relaxation and electron-hole recombination) mediated by bosons (photons and phonons), and is thus predictive of photogalvanic currents in realistic materials. In particular, for the linear photogalvanic effect, we find electron scatterings mediated by phonons contribute significantly to the shift current for prototypical piezoelectrics like BaTiO$_3$. For the circular photogalvanic effect, we develop a self-consistent theory of a steady injection current that incorporates realistic scattering mediated by phonons. Our formulation developed for photogalvanic current elucidates its connection with fundamental quantum-geometric quantities such as the Berry curvature and the quantum metric. A phonon-based explanation is proposed for the bipolar transient photogalvanic current observed by the THz emission spectroscopy.
title Photogalvanic currents from first-principles real-time density-matrix dynamics
topic Materials Science
url https://arxiv.org/abs/2601.01059