Bright quantum dot light sources using monolithic microlenses on gold back-reflectors
Abstract
We present the fabrication process of bright quantum dot (QD) photon sources by non-deterministic embedding into broadband monolithic microlens arrays on gold-coated substrates. Arrays of cylindrical photoresist templates, with diameters ranging from to , are thermally reflowed and subsequently transferred into the thin-film semiconductor heterostructure with embedded quantum dots through an optimized anisotropic and three-dimensional shape-preserving reactive ion etching process. This methodology facilitated the fabrication of large-scale ( ) and densely packed arrays of uniformly shaped microlenses ( ), with the brightest emissions from QDs embedded in microlenses exhibiting lateral diameters and heights of and , respectively. Finite-difference time-domain simulations of both idealized and fabricated lens shapes provide a comprehensive three-dimensional analysis of the device performance and optimization potentials such as anti-reflection coatings. It is found that free-space extraction (fiber-coupled) efficiencies of up to ( ) are achievable for hemispherical QD-microlenses on gold-coated substrates. A statistical model for the fabrication yield of QD-microlenses is developed and experimentally corroborated by photoluminescence spectroscopy of fabricated microlens arrays. This analysis exhibited a free-space intensity enhancement by factors of up to in approximately out of microlenses, showing good agreement to the theoretical expectations. This scalable fabrication strategy underscores the potential of these compact, high-efficiency sources offering new prospects for applications of these devices in future large-scale quantum networks.
Keywords
Cite
@article{arxiv.2503.07305,
title = {Bright quantum dot light sources using monolithic microlenses on gold back-reflectors},
author = {Moritz Langer and Sai A. Dhurjati and Yared G. Zena and Ahmad Rahimi and Mandira Pal and Liesa Raith and Sandra Nestler and Riccardo Bassoli and Frank H. P. Fitzek and Oliver G. Schmidt and Caspar Hopfmann},
journal= {arXiv preprint arXiv:2503.07305},
year = {2025}
}