Bremer Lucas, Jimenez Carlos, Thiele Simon, Weber Ksenia, Huber Tobias, Rodt Sven, Herkommer Alois, Burger Sven, Höfling Sven, Giessen Harald, Reitzenstein Stephan
Opt Express. 2022 May 9;30(10):15913-15928. doi: 10.1364/OE.456777.
We perform extended numerical studies to maximize the overall photon coupling efficiency of fiber-coupled quantum dot single-photon sources emitting in the near-infrared and O-band and C-band. Using the finite element method, we optimize the photon extraction and fiber-coupling efficiency of quantum dot single-photon sources based on micromesas, microlenses, circular Bragg grating cavities and micropillars. The numerical simulations which consider the entire system consisting of the quantum dot source itself, the coupling lens, and the single-mode fiber, yield overall photon coupling efficiencies of up to 83%. Our work provides objectified comparability of different fiber-coupled single-photon sources and proposes optimized geometries for the realization of practical and highly efficient quantum dot single-photon sources.
我们进行了广泛的数值研究,以最大化在近红外、O波段和C波段发射的光纤耦合量子点单光子源的整体光子耦合效率。使用有限元方法,我们基于微台面、微透镜、圆形布拉格光栅腔和微柱优化了量子点单光子源的光子提取和光纤耦合效率。考虑由量子点源本身、耦合透镜和单模光纤组成的整个系统的数值模拟,产生了高达83%的整体光子耦合效率。我们的工作提供了不同光纤耦合单光子源的客观可比性,并提出了用于实现实用且高效的量子点单光子源的优化几何结构。