Droplet Epitaxy of Semiconductor Nanostructures for Quantum Photonic Devices
arXiv:2103.15083 · doi:10.1038/s41563-019-0355-y
Abstract
The long dreamed quantum internet would consist of a network of quantum nodes (solid-state or atomic systems) linked by flying qubits, naturally based on photons, travelling over long distances at the speed of light, with negligible decoherence. A key component is a light source, able to provide single or entangled photon pairs. Among the different platforms, semiconductor quantum dots are very attractive, as they can be integrated with other photonic and electronic components in miniaturized chips. In the early 1990s two approaches were developed to synthetize self-assembled epitaxial semiconductor quantum dots (QDs), or artificial atoms, namely the Stranski-Krastanov (SK) and the droplet epitaxy (DE) method. Because of its robustness and simplicity, the SK method became the workhorse to achieve several breakthroughs in both fundamental and technological areas. The need for specific emission wavelengths or structural and optical properties has nevertheless motivated further research on the DE method and its more recent development, the local-droplet-etching (LDE), as complementary routes to obtain high quality semiconductor nanostructures. The recent reports on the generation of highly entangled photon pairs, combined with good photon indistinguishability, suggest that DE and LDE QDs may complement (and sometime even outperform) conventional SK InGaAs QDs as quantum emitters. We present here a critical survey of the state of the art of DE and LDE, highlighting the advantages and weaknesses, the obtained achievements and the still open challenges, in view of applications in quantum communication and technology.
26 pages, 5 figures
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Cited by in corpus (10)
- Quantum dots for photonic quantum information technology
- Theory of magneto-optical properties of neutral and charged excitons in GaAs/AlGaAs quantum dots
- Single photon emission from droplet epitaxial quantum dots in the standard telecom window around a wavelength of 1.55 m
- Telecom-wavelength InAs QDs with low fine structure splitting grown by droplet epitaxy on GaAs(111)A vicinal substrates
- Large-Range Frequency Tuning of a Narrow-Linewidth Quantum Emitter
- Nanohole etching in AlGaSb with Ga droplets
- Reentrant behavior of the density vs temperature of indium islands on GaAs(111)A
- Quantum dots as potential sources of strongly entangled photons for quantum networks
- Quantum Fourier transform spectroscopy of biexciton
- An intuitive scheme for the restoration of entanglement for polarization-entangled photons emitted from quantum dots with non-vanishing fine structure splitting