Quantum coherence induced second plateau in high-sideband generation
arXiv:1311.6237 · doi:10.1103/PhysRevB.89.121202
Abstract
Optically excited electron-hole pairs, driven by a strong terahertz (THz) field, create high-sidebands in the optical spectrum. The sideband spectrum exhibits a 'plateau' up to a cutoff of 3.17Up, where Up is the ponderomotive energy. This cutoff is determined, semi-classically, from the maximum kinetic energy an electron-hole pair can gain from the THz field along a closed trajectory. A full quantum treatment reveals a second, classically forbidden, plateau with a cutoff of 8Up, the maximum kinetic energy an electron-hole pair can gain from the THz field along an open trajectory. The second plateau appears because a spatially separated electron and hole can still recombine if the classical excursion is within the coherence length of the electron-hole wavefunction or, equivalently, the coherence time is longer than the excursion time (half the THz field period). This effect broadens the range of materials and excitation conditions where high-sideband generations can occur, thereby providing a wealth of novel systems for ultrafast electro-optical applications.
Updated to journal version with revised figure 1. 5 pages, 3 figures
Cited by in corpus (9)
- Crystal-momentum-resolved contributions to multiple plateaus of high-order harmonic generation from band-gap materials
- Efficient high-harmonic generation in graphene with two-color laser field at orthogonal polarization
- Temperature-induced dephasing in high-order harmonic generation from solids
- Theory of low power ultra-broadband terahertz sideband generation in bi-layer graphene
- Berry curvature and shift vector effects at high-order wave mixing in biased bilayer graphene
- Energy-band echoes: Time-reversed light emission from optically driven quasiparticle wavepackets
- Multiple plateaus of high-sideband generation from Floquet matters
- An explicit formula for high-order sideband polarization by extreme tailoring of Feynman path integrals
- Induced by coherent THz-radiation high harmonics generation in bilayer graphene at high Fermi energies