Hornung Florian, Pfister Ulrich, Bauer Stephanie, Cyrlyson's Dee Rocking, Wang Dongze, Vijayan Ponraj, Garcia Ailton J, Covre da Silva Saimon Filipe, Jetter Michael, Portalupi Simone L, Rastelli Armando, Michler Peter
Institut für Halbleiteroptik und Funktionelle Grenzflächen, Center for Integrated Quantum Science and Technology (IQST) and SCoPE, University of Stuttgart, Allmandring 3, 70569 Stuttgart, Germany.
Institute of Semiconductor and Solid State Physics, Johannes Kepler University Linz, 4040 Linz, Austria.
Nano Lett. 2024 Jan 31;24(4):1184-1190. doi: 10.1021/acs.nanolett.3c04010. Epub 2024 Jan 17.
Integration of on-demand quantum emitters into photonic integrated circuits (PICs) has drawn much attention in recent years, as it promises a scalable implementation of quantum information schemes. A central property for several applications is the indistinguishability of the emitted photons. In this regard, GaAs quantum dots (QDs) obtained by droplet etching epitaxy show excellent performances, making the realization of these QDs into PICs highly appealing. Here, we show the first implementation in this direction, realizing the key passive elements needed in PICs, i.e., single-mode waveguides (WGs) with integrated GaAs-QDs and beamsplitters. We study the statistical distribution of wavelength, linewidth, and decay time of the excitonic line, as well as the quantum optical properties of individual emitters under resonant excitation. We achieve single-photon purities as high as 1 - (0) = 0.929 ± 0.009 and two-photon interference visibilities of up to = 0.953 ± 0.032 for consecutively emitted photons.
近年来,将按需量子发射器集成到光子集成电路(PIC)中备受关注,因为它有望实现量子信息方案的可扩展实施。对于多个应用而言,一个核心特性是所发射光子的不可区分性。在这方面,通过液滴蚀刻外延获得的砷化镓量子点(QD)表现出优异的性能,使得将这些量子点集成到光子集成电路中极具吸引力。在此,我们展示了朝着这个方向的首个实施方案,实现了光子集成电路所需的关键无源元件,即集成了砷化镓量子点的单模波导(WG)和分束器。我们研究了激子线的波长、线宽和衰减时间的统计分布,以及在共振激发下单个发射器的量子光学特性。对于连续发射的光子,我们实现了高达1 - (0) = 0.929 ± 0.009的单光子纯度和高达 = 0.953 ± 0.032的双光子干涉可见度。