Theory of strong-field injection and control of photocurrent in dielectrics and wide bandgap semiconductors
arXiv:1212.4059 · doi:10.1103/PhysRevB.87.115201
Abstract
We propose a theory of optically-induced currents in dielectrics and wide-gap semiconductors exposed to a non-resonant ultrashort laser pulse with a stabilized carrier-envelope phase. In order to describe strong-field electron dynamics, equations for density matrix have been solved self-consistently with equations for the macroscopic electric field inside the medium, which we model by a one-dimensional potential. We provide a detailed analysis of physically important quantities (band populations, macroscopic polarization, and transferred charge), which reveals that carrier-envelope phase control of the electric current can be interpreted as a result of quantum-mechanical interference of multiphoton excitation channels. Our numerical results are in good agreement with experimental data.
10 pages, 9 figures
References in corpus (2)
Cited by in corpus (16)
- Strong-field Phenomena in Periodic Systems
- Strong-Field Perspective on High-Harmonic Radiation from Bulk Solids
- Circular dichroism in high-order harmonic generation: Heralding topological phases and transitions in Chern insulators
- Ab Initio Simulation of Electrical Currents Induced by Ultrafast Laser Excitation of Dielectric Materials
- Sub-cycle optical control of current in a semiconductor: from the multiphoton to the tunneling regime
- Strong-Field Resonant Dynamics in Semiconductors
- Semiconductor-Bloch Formalism: Derivation and Application to High-Harmonic Generation from Dirac Fermions
- The effect of dynamical Bloch oscillations on optical-field-induced current in a wide gap dielectric
- How to obtain complex transition dipole moments satisfying crystal symmetry and periodicity from ab-initio calculations
- Role of intra-band transitions in photo-carrier generation
- Quantum-trajectory analysis for charge transfer in solid materials induced by strong laser fields
- Theory for all-optical responses in topological materials: the velocity gauge picture
- Ultrafast control of strong-field electron dynamics in solids
- Non-Markovian pure dephasing in a dielectric excited by a few-cycle laser pulse
- Microscopic electron dynamics in nonlinear optical response of solids
- Optically induced currents in dielectrics as a nonlinear optical effect