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Main Authors: Chen, Zhaopin, Granados, Camilo, Uzner, Eyal, Nisim, Ido, Kroeger, Daniel, Neufeld, Ofer, Ciappina, Marcelo F., Krüger, Michael
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2505.24290
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author Chen, Zhaopin
Granados, Camilo
Uzner, Eyal
Nisim, Ido
Kroeger, Daniel
Neufeld, Ofer
Ciappina, Marcelo F.
Krüger, Michael
author_facet Chen, Zhaopin
Granados, Camilo
Uzner, Eyal
Nisim, Ido
Kroeger, Daniel
Neufeld, Ofer
Ciappina, Marcelo F.
Krüger, Michael
contents High-harmonic generation (HHG), the hallmark effect of attosecond science, is a nonperturbative nonlinear process leading to the emission of high-harmonic light from gases and solids. In gases, extreme driving laser pulse intensities can deplete the ground state, suppressing harmonic emission during the trailing edge of the pulse. Here, we report a similar effect, pronounced ultrafast carrier saturation dynamics and harmonic emission suppression during nonperturbative harmonic generation (NPHG) in a gapless Dirac semimetal -- highly oriented pyrolytic graphite (HOPG). Remarkably, HOPG supports NPHG at laser intensities as low as $\sim 10^{10}$ W cm$^{-2}$, facilitated by its vanishing bandgap. Ultrafast carrier saturation strongly modulates the interplay between interband and intraband currents, a key characteristic of NPHG in Dirac materials. Using two-color spectroscopy, we reveal the excitation dynamics of Dirac electron-hole pairs as it affects the emission of harmonics during the presence of the driving laser pulse. The excitation of out-of-equilibrium hot carriers and the concomitant saturation near the Dirac points leads to a marked suppression of interband harmonics and induces measurable temporal shifts. These observations are supported by simulations based on semiconductor Bloch equations. Our finding reveal that field-driven carrier saturation plays a critical role in gapless solid NPHG. We demonstrate the potential of NPHG and HHG as a sensitive, all-optical probe of ultrafast carrier dynamics, offering novel opportunities for ultrafast optoelectronics in Dirac materials.
format Preprint
id arxiv_https___arxiv_org_abs_2505_24290
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Two-color harmonic spectroscopy of ultrafast Dirac electron dynamics
Chen, Zhaopin
Granados, Camilo
Uzner, Eyal
Nisim, Ido
Kroeger, Daniel
Neufeld, Ofer
Ciappina, Marcelo F.
Krüger, Michael
Optics
Mesoscale and Nanoscale Physics
High-harmonic generation (HHG), the hallmark effect of attosecond science, is a nonperturbative nonlinear process leading to the emission of high-harmonic light from gases and solids. In gases, extreme driving laser pulse intensities can deplete the ground state, suppressing harmonic emission during the trailing edge of the pulse. Here, we report a similar effect, pronounced ultrafast carrier saturation dynamics and harmonic emission suppression during nonperturbative harmonic generation (NPHG) in a gapless Dirac semimetal -- highly oriented pyrolytic graphite (HOPG). Remarkably, HOPG supports NPHG at laser intensities as low as $\sim 10^{10}$ W cm$^{-2}$, facilitated by its vanishing bandgap. Ultrafast carrier saturation strongly modulates the interplay between interband and intraband currents, a key characteristic of NPHG in Dirac materials. Using two-color spectroscopy, we reveal the excitation dynamics of Dirac electron-hole pairs as it affects the emission of harmonics during the presence of the driving laser pulse. The excitation of out-of-equilibrium hot carriers and the concomitant saturation near the Dirac points leads to a marked suppression of interband harmonics and induces measurable temporal shifts. These observations are supported by simulations based on semiconductor Bloch equations. Our finding reveal that field-driven carrier saturation plays a critical role in gapless solid NPHG. We demonstrate the potential of NPHG and HHG as a sensitive, all-optical probe of ultrafast carrier dynamics, offering novel opportunities for ultrafast optoelectronics in Dirac materials.
title Two-color harmonic spectroscopy of ultrafast Dirac electron dynamics
topic Optics
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2505.24290