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Tailoring the optical properties of dilute nitride semiconductors at the nanometer scale

Articolo
Data di Pubblicazione:
2021
Abstract:
We report on the innovative approaches we developed for the fabrication of site-controlled semiconductor nanostructures [e.g. quantum dots (QDs), nanowires], based on the spatially selective incorporation and/or removal of hydrogen in dilute nitride semiconductor alloys [e.g. Ga(AsN) and (InGa)(AsN)]. In such systems, the formation of stable nitrogen-hydrogen complexes removes the effects nitrogen has on the alloy properties, which in turn paves the way to the direct engineering of the material's electronic-and, thus, optical-properties: not only the bandgap energy, but also the refractive index and the polarization properties of the system can indeed be tailored with high precision and in a reversible manner. Here, lithographic approaches and/or plasmon-assisted optical irradiation-coupled to the ultra-sharp diffusion profile of hydrogen in dilute nitrides-are employed to control the hydrogen implantation and/or removal process at a nanometer scale. This results in a highly deterministic control of the spatial and spectral properties of the fabricated nanostructures, eventually obtaining semiconductor nanowires with controlled polarization properties, as well as site-controlled QDs with an extremely high control on their spatial and spectral properties. The nanostructures fabricated with these techniques, whose optical properties have also been simulated by finite-element-method calculations, are naturally suited for a deterministic coupling in optical nanocavities (i.e. photonic crystal cavities and circular Bragg resonators) and are therefore of potential interest for emerging quantum technologies.
Tipologia CRIS:
01.01 Articolo in rivista
Keywords:
dilute nitrides; hydrogen; site-controlled quantum dots; nanophotonics; plasmonic nanoapertures; patterning
Elenco autori:
Pettinari, Giorgio
Autori di Ateneo:
PETTINARI GIORGIO
Link alla scheda completa:
https://iris.cnr.it/handle/20.500.14243/426932
Pubblicato in:
NANOTECHNOLOGY (BRISTOL. PRINT)
Journal
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