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Gate-tunable quantum pathways of high harmonic generation in graphene

Title
Gate-tunable quantum pathways of high harmonic generation in graphene
Author(s)
Cha, SoonyoungKim, MinjeongKim, YoungjaeChoi, ShinyoungKang, SejongKim, HoonYoon, SanghoMoon, GunhoKim, TaehoLee, Ye WoonCho, Gil YoungPark, Moon JeongKim, Cheol JooKim, B.J.Lee, JaeDongJo, Moon HoKim, Jonghwan
Issued Date
2022-11
Citation
Nature Communications, v.13, no.1
Type
Article
Keywords
MASSLESS DIRAC FERMIONSFIELD
ISSN
2041-1723
Abstract
Under strong laser fields, electrons in solids radiate high-harmonic fields by travelling through quantum pathways in Bloch bands in the sub-laser-cycle timescales. Understanding these pathways in the momentum space through the high-harmonic radiation can enable an all-optical ultrafast probe to observe coherent lightwave-driven processes and measure electronic structures as recently demonstrated for semiconductors. However, such demonstration has been largely limited for semimetals because the absence of the bandgap hinders an experimental characterization of the exact pathways. In this study, by combining electrostatic control of chemical potentials with HHG measurement, we resolve quantum pathways of massless Dirac fermions in graphene under strong laser fields. Electrical modulation of HHG reveals quantum interference between the multi-photon interband excitation channels. As the light-matter interaction deviates beyond the perturbative regime, elliptically polarized laser fields efficiently drive massless Dirac fermions via an intricate coupling between the interband and intraband transitions, which is corroborated by our theoretical calculations. Our findings pave the way for strong-laser-field tomography of Dirac electrons in various quantum semimetals and their ultrafast electronics with a gate control. © 2022, The Author(s).
URI
http://hdl.handle.net/20.500.11750/17194
DOI
10.1038/s41467-022-34337-y
Publisher
Nature Publishing Group
Related Researcher
  • 이재동 Lee, JaeDong
  • Research Interests Theoretical Condensed Matter Physics; Ultrafast Dynamics and Optics; Nonequilibrium Phenomena
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Department of Physics and Chemistry Light and Matter Theory Laboratory 1. Journal Articles

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