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Intense Laser Pulse Interaction With Graphene and Graphene Ribbons
1Department of Physics, Universität Bielefeld, Bielefeld, Germany.
Frontiers in Chemistry
|May 13, 2022
Summary
This study reveals how intense laser pulses interact with graphene, showing a shift from steady to oscillatory currents when moving from 2D graphene monolayers to 1D ribbons. The carrier-envelope-phase (CEP) of the laser pulse can control current generation in ribbons.
Area of Science:
- Quantum mechanics
- Condensed matter physics
- Materials science
Background:
- Graphene's unique electronic properties make it a candidate for advanced optical and electronic devices.
- Understanding light-matter interactions in graphene is crucial for harnessing its potential.
Purpose of the Study:
- To investigate quantum mechanically the interaction of intense ultrashort laser pulses with graphene monolayers and armchair graphene ribbons.
- To analyze the resulting electronic dynamics, including population excitation, interband and intraband correlations, and induced currents.
- To compare the behavior of 2D graphene monolayers with 1D graphene ribbons under laser irradiation.
Main Methods:
- Utilized a tight-binding (TB) Hamiltonian for monolayer graphene.
- Developed rules to derive dispersion relations for armchair graphene ribbons of any width from monolayer TB eigenvalues.
- Numerically solved coupled equations for band amplitudes to determine time-dependent wavefunctions and expectation values.
- Simulated population excitation, interband/intraband correlations, and currents in monolayer and ribbon structures.
- Investigated the dependence of ribbon currents on the carrier-envelope-phase (CEP) of the laser pulse.
Main Results:
- A transition in current dominance was observed from intraband (steady total current) in monolayers to interband (oscillatory current) in ribbons.
- This transition is attributed to dimensional confinement and the finite band gap in ribbons.
- Radiation spectra showed similar structures for both monolayer and ribbon, suggesting dominance of virtual continuum-continuum transitions.
- Charge currents in ribbons were found to be reversible by altering the laser pulse's CEP.
- The pulse shape of charge carriers in ribbons can be engineered by tailoring the laser's vector potential.
Conclusions:
- Graphene ribbons exhibit distinct current dynamics compared to monolayers when interacting with ultrashort laser pulses.
- The dimensional confinement and band structure of ribbons significantly influence charge carrier behavior.
- Carrier-envelope-phase manipulation offers a pathway to control and design charge carrier dynamics in graphene ribbons.
- Further investigation is needed to fully elucidate the observed transition in current dominance.

