48 research outputs found
Nonlinear optics of graphene in a strong magnetic field
Graphene placed in a magnetic field possesses an extremely high
mid/far-infrared optical nonlinearity originating from its unusual band
structure and selection rules for the optical transitions near the Dirac point.
Here we study the linear and nonlinear optical response of graphene in strong
magnetic and optical fields using quantum- mechanical density-matrix formalism.
We calculate the power of coherent terahertz radiation generated as a result of
four-wave mixing in graphene. We show that even one monolayer of graphene gives
rise to appreciable nonlinear frequency conversion efficiency and Raman gain
for modest intensities of incident infrared radiation.Comment: 16 pages, 6 figure
Laser-driven parametric instability and generation of entangled photon-plasmon states in graphene
We show that a strong infrared laser beam obliquely incident on graphene can
experience a parametric instability with respect to decay into lower-frequency
(idler) photons and THz surface plasmons. The instability is due to a strong
in-plane second-order nonlinear response of graphene which originates from its
spatial dispersion. The parametric decay leads to efficient generation of THz
plasmons and gives rise to quantum entanglement of idler photons and surface
plasmon states. A similar process can be supported by surface states of
topological insulators such as BiSe.Comment: The submission contains the paper and three figure
Superradiant Decay of Cyclotron Resonance of Two-Dimensional Electron Gases
We report on the observation of collective radiative decay, or superradiance,
of cyclotron resonance (CR) in high-mobility two-dimensional electron gases in
GaAs quantum wells using time-domain terahertz magnetospectroscopy. The decay
rate of coherent CR oscillations increases linearly with the electron density
in a wide range, which is a hallmark of superradiant damping. Our fully quantum
mechanical theory provides a universal formula for the decay rate, which
reproduces our experimental data without any adjustable parameter. These
results firmly establish the many-body nature of CR decoherence in this system,
despite the fact that the CR frequency is immune to electron-electron
interactions due to Kohn's theorem.Comment: 5 pages, 4 figure
Coherent radiation from neutral molecules moving above a grating
We predict and study the quantum-electrodynamical effect of parametric
self-induced excitation of a molecule moving above the dielectric or conducting
medium with periodic grating. In this case the radiation reaction force
modulates the molecular transition frequency which results in a parametric
instability of dipole oscillations even from the level of quantum or thermal
fluctuations. The present mechanism of instability of electrically neutral
molecules is different from that of the well-known Smith-Purcell and transition
radiation in which a moving charge and its oscillating image create an
oscillating dipole.
We show that parametrically excited molecular bunches can produce an easily
detectable coherent radiation flux of up to a microwatt.Comment: 4 page