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Observation of light-driven band structure via multiband high-harmonic spectroscopy
by
Shames, Sergei
, Jiménez-Galán, Álvaro
, Ivanov, Misha
, Bruner, Barry D
, Dudovich, Nirit
, Arusi-Parpar, Talya
, Orenstein, Gal
, Uzan-Narovlansky, Ayelet J
, Silva, Rui E. F
, Smirnova, Olga
, Yan, Binghai
in
Band structure of solids
/ Conduction bands
/ Crystal structure
/ Crystals
/ Electric fields
/ Energy gap
/ Harmonic generations
/ Optical control
/ Optical properties
/ Spectroscopy
/ Spectrum analysis
/ Voltage drop
2022
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Observation of light-driven band structure via multiband high-harmonic spectroscopy
by
Shames, Sergei
, Jiménez-Galán, Álvaro
, Ivanov, Misha
, Bruner, Barry D
, Dudovich, Nirit
, Arusi-Parpar, Talya
, Orenstein, Gal
, Uzan-Narovlansky, Ayelet J
, Silva, Rui E. F
, Smirnova, Olga
, Yan, Binghai
in
Band structure of solids
/ Conduction bands
/ Crystal structure
/ Crystals
/ Electric fields
/ Energy gap
/ Harmonic generations
/ Optical control
/ Optical properties
/ Spectroscopy
/ Spectrum analysis
/ Voltage drop
2022
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
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Observation of light-driven band structure via multiband high-harmonic spectroscopy
by
Shames, Sergei
, Jiménez-Galán, Álvaro
, Ivanov, Misha
, Bruner, Barry D
, Dudovich, Nirit
, Arusi-Parpar, Talya
, Orenstein, Gal
, Uzan-Narovlansky, Ayelet J
, Silva, Rui E. F
, Smirnova, Olga
, Yan, Binghai
in
Band structure of solids
/ Conduction bands
/ Crystal structure
/ Crystals
/ Electric fields
/ Energy gap
/ Harmonic generations
/ Optical control
/ Optical properties
/ Spectroscopy
/ Spectrum analysis
/ Voltage drop
2022
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Observation of light-driven band structure via multiband high-harmonic spectroscopy
Journal Article
Observation of light-driven band structure via multiband high-harmonic spectroscopy
2022
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Overview
Intense light–matter interactions have revolutionized our ability to probe and manipulate quantum systems at sub-femtosecond timescales1, opening routes to the all-optical control of electronic currents in solids at petahertz rates2–7. Such control typically requires electric-field amplitudes in the range of almost volts per angstrom, when the voltage drop across a lattice site becomes comparable to the characteristic bandgap energies. In this regime, intense light–matter interaction induces notable modifications to the electronic and optical properties8–10, dramatically modifying the crystal band structure. Yet, identifying and characterizing such modifications remain an outstanding problem. As the oscillating electric field changes within the driving field’s cycle, does the band structure follow and how can it be defined? Here we address this fundamental question, proposing all-optical spectroscopy to probe the laser-induced closing of the bandgap between adjacent conduction bands. Our work reveals the link between nonlinear light–matter interactions in strongly driven crystals and the sub-cycle modifications in their effective band structure.Modifications of the effective band structure of MgO crystal is investigated on a timescale within one-quarter cycle of the electromagnetic-field oscillation. The high-harmonic generation spectra show a signature of laser-induced closing of the bandgap.
Publisher
Nature Publishing Group
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