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Journal ArticleDOI

Fine structure of neutral and charged excitons in self-assembled In(Ga)As/(Al)GaAs quantum dots

TLDR
In this article, the fine structure of excitons is studied by magnetophotoluminescence spectroscopy of single self-assembled In(Ga)As/(Al)GaAs quantum dots.
Abstract
The fine structure of excitons is studied by magnetophotoluminescence spectroscopy of single self-assembled In(Ga)As/(Al)GaAs quantum dots. Both strength and orientation of the magnetic field are varied. In a combination with a detailed theoretical analysis, these studies allow us to develop a comprehensive picture of the exciton fine structure. Symmetry of the dot structures as well as its breaking cause characteristic features in the optical spectra, which are determined by the electron-hole exchange and the Zeeman interaction of the carriers. The symmetry breaking is either inherent to the dot due to geometry asymmetries, or it can be obtained by applying a magnetic field with an orientation different from the dot symmetry axis. From data on spin splitting and on polarization of the emission we can identify neutral as well as charged exciton complexes. For dots with weakly broken symmetry, the angular momentum of the neutral exciton is no longer a good quantum number and the exchange interaction lifts degeneracies within the fine-structure manifold. The symmetry can be restored by a magnetic field due to the comparatively strong Zeeman interactions of electron and hole. For dots with a strongly broken symmetry, bright and dark excitons undergo a strong hybridization, as evidenced by pronounced anticrossings when states within the manifold are brought into resonance. The fine structure can no longer be described within the frame developed for structures of higher dimensionality. In particular, the hybridization cannot be broken magnetically. For charged excitons, the exchange interaction vanishes, demonstrating that the exchange splitting of a neutral exciton can be switched off by injecting an additional carrier.

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Journal ArticleDOI

Interfacing single photons and single quantum dots with photonic nanostructures

TL;DR: An overview of the theoretical principles involved, as well as applications ranging from high-precision quantum electrodynamics experiments to quantum-information processing can be found in this paper.
Journal ArticleDOI

Single quantum emitters in monolayer semiconductors

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Journal ArticleDOI

Optically programmable electron spin memory using semiconductor quantum dots

TL;DR: This work demonstrates a single electron spin memory device in which the electron spin can be programmed by frequency selective optical excitation, and directly measure the intrinsic spin flip time and its dependence on magnetic field.
Journal ArticleDOI

Complete quantum control of a single quantum dot spin using ultrafast optical pulses

TL;DR: In this paper, the authors demonstrate coherent control over an initialized electron spin state in a quantum dot using picosecond optical pulses, along with the spin initialization and final projective measurement of the spin state.
Journal ArticleDOI

Voltage-controlled quantum light from an atomically thin semiconductor

TL;DR: The possibility of leveraging the atomically thin semiconductor tungsten diselenide (WSe2) as a host for quantum dot-like defects is demonstrated and it is reported that this previously unexplored solid-state quantum emitter in WSe2 generates single photons with emission properties that can be controlled via the application of external d.c. electric and magnetic fields.
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