Nonperturbative model for optical response under intense periodic fields with application to graphene in a strong perpendicular magnetic field
arXiv:1712.09211 · doi:10.1103/PhysRevB.97.205406
Abstract
Graphene exhibits extremely strong optical nonlinearity when a strong perpendicular magnetic field is applied, the response current shows strong field dependence even for moderate light intensity, and the perturbation theory fails. We nonperturbatively calculate full optical conductivities induced by a periodic field in an equation-of-motion framework based on the Floquet theorem, with the scattering described phenomenologically. The nonlinear response at high fields is understood in terms of the dressed electronic states, or Floquet states, which is further characterized by the optical conductivity for a weak probe light field. This approach is illustrated for a magnetic field at T and a driving field with photon energy eV. Our results show that the perturbation theory works only for weak fields kV/cm, confirming the extremely strong light matter interaction for Landau levels of graphene. This approach can be easily extended to the calculation of optical conductivities in other systems.
References in corpus (7)
- Tuning laser-induced bandgaps in graphene
- Multiterminal Conductance of a Floquet Topological Insulator
- Effective Theory of Floquet Topological Transitions
- Optical response of graphene under intense terahertz fields
- Generation of entangled photons in graphene in a strong magnetic field
- Spin relaxation in an InAs quantum dot in the presence of terahertz driving fields
- Nonlinear magneto-optic effects in doped graphene and gapped graphene: a perturbative treatment