Femtosecond currents in transition metal dichalcogenides monolayers
arXiv:2011.07345 · doi:10.1103/PhysRevB.103.155416
Abstract
We theoretically study the interaction of an ultrafast intense linearly polarized optical pulse with monolayers of transition metal dichalcogenides (TMDCs). Such a strong pulse redistributes electrons between the bands and generates femtosecond currents during the pulse. Due to the large bandwidth of the incident pulse, this process is completely off-resonant. While in TMDCs the time-reversal symmetry is conserved, the inversion symmetry is broken and these monolayers have the axial symmetry along armchair direction but not along the zigzag one. Therefore, the pulse polarized along the asymmetric direction of TMDC monolayer generates both longitudinal, i.e., along the direction of polarization, and transverse, i.e., in the perpendicular direction, currents. Such currents result in charge transfer through the system. We study different TMDC materials and show how the femtosecond transport in TMDC monolayers depend on their parameters, such as lattice constant and bandgap.
References in corpus (6)
- 2D materials and van der Waals heterostructures
- Substrate-induced band gap opening in epitaxial graphene
- Observation of giant bandgap renormalization and excitonic effects in a monolayer transition metal dichalcogenide semiconductor
- Single particle relaxation time versus transport scattering time in a 2D graphene layer
- Interaction of carrier envelope phase-stable laser pulses with graphene: the transition from the weak-field to the strong-field regime
- Nonlinear optical response induced by non-Abelian Berry curvature in time-reversal-invariant insulators