English

Optical response of (InGa)(AsSb)/GaAs quantum dots embedded in a GaP matrix

Mesoscale and Nanoscale Physics 2019-11-13 v2 Materials Science

Abstract

The optical response of (InGa)(AsSb)/GaAs quantum dots (QDs) grown on GaP (001) substrates is studied by means of excitation and temperature-dependent photoluminescence (PL), and it is related to their complex electronic structure. Such QDs exhibit concurrently direct and indirect transitions, which allows the swapping of Γ\Gamma and LL quantum confined states in energy, depending on details of their stoichiometry. Based on realistic data on QD structure and composition, derived from high-resolution transmission electron microscopy (HRTEM) measurements, simulations by means of kp\mathbf{k\cdot p} theory are performed. The theoretical prediction of both momentum direct and indirect type-I optical transitions are confirmed by the experiments presented here. Additional investigations by a combination of Raman and photoreflectance spectroscopy show modifications of the hydrostatic strain in the QD layer, depending on the sequential addition of QDs and capping layer. A variation of the excitation density across four orders of magnitude reveals a 50 meV energy blueshift of the QD emission. Our findings suggest that the assignment of the type of transition, based solely by the observation of a blueshift with increased pumping, is insufficient. We propose therefore a more consistent approach based on the analysis of the character of the blueshift evolution with optical pumping, which employs a numerical model based on a semi-self-consistent configuration interaction method.

Keywords

Cite

@article{arxiv.1906.09842,
  title  = {Optical response of (InGa)(AsSb)/GaAs quantum dots embedded in a GaP matrix},
  author = {Petr Steindl and Elisa Maddalena Sala and Benito Alén and David Fuertes Marrón and Dieter Bimberg and Petr Klenovský},
  journal= {arXiv preprint arXiv:1906.09842},
  year   = {2019}
}