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Autori principali: Hatch, Lance, Rana, Navdeep, He, Shoushou, Yu, Jessica, Zhao, Boyang, Zhang, Yu, Wen, Haidan, Roy, Xavier, Yue, Lun, Gaarde, Mette, Liu, Hanzhe
Natura: Preprint
Pubblicazione: 2026
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Accesso online:https://arxiv.org/abs/2604.10304
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author Hatch, Lance
Rana, Navdeep
He, Shoushou
Yu, Jessica
Zhao, Boyang
Zhang, Yu
Wen, Haidan
Roy, Xavier
Yue, Lun
Gaarde, Mette
Liu, Hanzhe
author_facet Hatch, Lance
Rana, Navdeep
He, Shoushou
Yu, Jessica
Zhao, Boyang
Zhang, Yu
Wen, Haidan
Roy, Xavier
Yue, Lun
Gaarde, Mette
Liu, Hanzhe
contents Solid-state high-harmonic spectroscopy allows the study of strongly driven ultrafast electron dynamics. Microscopically, high harmonics are generated by strong-laser-field acceleration of electron-hole pairs through the lattice. At finite temperatures, atomic-scale structural fluctuations are ubiquitous and are expected to influence the electron-hole trajectories. Yet, the effect of thermal lattice fluctuations on solid-state high-harmonic generation (HHG) has not been quantified. Here, we demonstrate a profound sensitivity of HHG to thermal lattice fluctuations, by characterizing the temperature dependence of HHG in Re6Se8Cl2, a superatomic semiconductor. As the sample temperature is decreased, the high-harmonic yield exhibits a slow increase, followed by an abrupt increase below 50 K, consistent with the temperature at which lattice vibrations are strongly suppressed. Our calculations show that thermal lattice fluctuations both weaken the harmonic response from individual distorted configurations and induce phase dispersion across the ensemble, leading to a pronounced suppression of the coherently emitted harmonics. We show that this effect can be interpreted in terms of an effective electronic dephasing time that varies with temperature. Our results are relevant to dephasing in broad strong-field phenomena, including lightwave electronics and Floquet engineering. The wide tunability of superatomic crystals further enables materials-controlled strong-field physics.
format Preprint
id arxiv_https___arxiv_org_abs_2604_10304
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Probing lattice fluctuations using solid-state high-harmonic spectroscopy
Hatch, Lance
Rana, Navdeep
He, Shoushou
Yu, Jessica
Zhao, Boyang
Zhang, Yu
Wen, Haidan
Roy, Xavier
Yue, Lun
Gaarde, Mette
Liu, Hanzhe
Materials Science
Optics
Solid-state high-harmonic spectroscopy allows the study of strongly driven ultrafast electron dynamics. Microscopically, high harmonics are generated by strong-laser-field acceleration of electron-hole pairs through the lattice. At finite temperatures, atomic-scale structural fluctuations are ubiquitous and are expected to influence the electron-hole trajectories. Yet, the effect of thermal lattice fluctuations on solid-state high-harmonic generation (HHG) has not been quantified. Here, we demonstrate a profound sensitivity of HHG to thermal lattice fluctuations, by characterizing the temperature dependence of HHG in Re6Se8Cl2, a superatomic semiconductor. As the sample temperature is decreased, the high-harmonic yield exhibits a slow increase, followed by an abrupt increase below 50 K, consistent with the temperature at which lattice vibrations are strongly suppressed. Our calculations show that thermal lattice fluctuations both weaken the harmonic response from individual distorted configurations and induce phase dispersion across the ensemble, leading to a pronounced suppression of the coherently emitted harmonics. We show that this effect can be interpreted in terms of an effective electronic dephasing time that varies with temperature. Our results are relevant to dephasing in broad strong-field phenomena, including lightwave electronics and Floquet engineering. The wide tunability of superatomic crystals further enables materials-controlled strong-field physics.
title Probing lattice fluctuations using solid-state high-harmonic spectroscopy
topic Materials Science
Optics
url https://arxiv.org/abs/2604.10304