5 research outputs found
All-Optical Ultrafast Control and Read-Out of a Single Negatively Charged Self-Assembled InAs Quantum Dot
We demonstrate the all-optical ultrafast manipulation and read-out of optical
transitions in a single negatively charged self-assembled InAs quantum dot, an
important step towards ultrafast control of the resident spin. Experiments
performed at zero magnetic field show the excitation and decay of the trion
(negatively charged exciton) as well as Rabi oscillations between the electron
and trion states. Application of a DC magnetic field perpendicular to the
growth axis of the dot enables observation of a complex quantum beat structure
produced by independent precession of the ground state electron and the excited
state heavy hole spins
A Single Charged Quantum Dot in a Strong Optical Field: Absorption, Gain, and the AC Stark Effect
We investigate a singly-charged quantum dot under a strong optical driving
field by probing the system with a weak optical field. When the driving field
is detuned from the trion transition, the probe absorption spectrum is shifted
from the trion resonance as a consequence of the dynamic Stark effect.
Simultaneously, a gain sideband is created, resulting from the coherent energy
transfer between the optical fields through the quantum dot nonlinearity. As
the pump detuning is moved from red to blue, we map out the anticrossing of
these two spectral lines. The optical Bloch equations for a stationary
two-level atom can be used to describe the numerous spectral features seen in
this nano solid state system
Recommended from our members
All-Optical Ultrafast Control and Read-Out of a Single Negatively Charged Self-Assembled InAs Quantum Dot
We demonstrate the all-optical ultrafast manipulation and read-out of optical
transitions in a single negatively charged self-assembled InAs quantum dot, an
important step towards ultrafast control of the resident spin. Experiments
performed at zero magnetic field show the excitation and decay of the trion
(negatively charged exciton) as well as Rabi oscillations between the electron
and trion states. Application of a DC magnetic field perpendicular to the
growth axis of the dot enables observation of a complex quantum beat structure
produced by independent precession of the ground state electron and the excited
state heavy hole spins