Electroabsorption in gated GaAs nanophotonic waveguides
Abstract
We report on the analysis of electroabsorption in thin GaAs/AlGaAs nanophotonic waveguides with an embedded -- junction. By measuring the transmission through waveguides of different lengths, we derive the propagation loss as a function of electric field, wavelength, and temperature. The results are in good agreement with the Franz-Keldysh model of electroabsorption extending over 200 meV below the GaAs bandgap, i.e. in the 910--970 nm wavelength range. We find a pronounced residual absorption in forward bias, which we attribute to Fermi-level pinning at the waveguide surface, producing over 20 dB/mm loss at room temperature. These results are essential for understanding the origin of loss in nanophotonic devices operating in the emission range of self-assembled InAs semiconductor quantum dots, towards the realization of scalable quantum photonic integrated circuits.
Cite
@article{arxiv.2102.06119,
title = {Electroabsorption in gated GaAs nanophotonic waveguides},
author = {Ying Wang and Ravitej Uppu and Xiaoyan Zhou and Camille Papon and Sven Scholz and Andreas D. Wieck and Arne Ludwig and Peter Lodahl and Leonardo Midolo},
journal= {arXiv preprint arXiv:2102.06119},
year = {2021}
}
Comments
6 pages, 3 figures