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Interaction of carrier envelope phase-stable laser pulses with graphene: the transition from the weak-field to the strong-field regime
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Ultrafast control of electron dynamics in solid state systems has recently found particular attention. By increasing the electric field strength of laser pulses, the light-matter interaction in solids might turn from a perturbative into a novel non-perturbative regime, where interband transitions from the valence to the conduction band become strongly affected by intraband motion. We have demonstrated experimentally and numerically that this combined dynamics can be controlled in graphene with the electric field waveform of phase-stabilized few-cycle laser pulses. Here we show new experimental data and matching simulation results at comparably low optical fields, which allows us to focus on the highly interesting transition regime where the light-matter interaction turns from perturbative to non-perturbative. We find a 5th order power-law scaling of the laser induced waveform-dependent current at low optical fields, which breaks down for higher optical fields, indicating the transition.
Forward citations
Cited by 2 Pith papers
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Ultrafast optical currents in gapped graphene
A two-band model predicts that a single-cycle linearly polarized pulse drives a purely inter-band transverse current in gapped graphene, because the conduction-band population remains symmetric about the field axis.
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Laser pulse waveform control of Dirac fermions in graphene
A numerical model shows that the carrier-envelope phase and waveform of a few-femtosecond laser pulse control the residual current and transferred charge in graphene.
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