论文标题

量子技术的3D打印微观磁晶体:将单个量子点排放的优化耦合到单个模式光纤

3D printed micro-optics for quantum technology: Optimized coupling of single quantum dot emission into a single mode fiber

论文作者

Sartison, Marc, Weber, Ksenia, Thiele, Simon, Bremer, Lucas, Fischbach, Sarah, Herzog, Thomas, Kolatschek, Sascha, Reitzenstein, Stephan, Herkommer, Alois, Michler, Peter, Portalupi, Simone Luca, Giessen, Harald

论文摘要

未来的量子技术至关重要地依赖于具有高保真度的量子网络。为了实现这一具有挑战性的目标,以某种方式连接单个量子系统至关重要,以使其发射的单光子与最高可能的连贯性重叠。这需要完美的模式重叠不同的发射器的发光,这需要使用单模式纤维。在这里,我们提出了一种完成这项任务的先进制造方法:我们将3D打印的复杂微型透镜(例如半球形和WeierStrass固体浸入式镜片)以及单个INAS量子点的总内部反射固体浸入透镜与单个模式纤维上的3D打印光纤上的总体内部反射固体浸入镜头结合在一起,并在单个模式纤维上使用单个模式纤维上的键盘。有趣的是,在获取微型发光图时,使用半球形固体浸入透镜进一步提高了发射器的定位精度至1 nm以下。该系统可以连接在一起并永久固定。该集成的系统可以通过浸入液氦,由Stirling Croyocooler或闭合循环的氦气低温恒温器来冷却,而无需使用光学窗口,因为所有访问都是通过集成的单模式光纤。我们确定了理想的光学设计和当前的实验,这些实验证明了通过高对比度汉伯里·布朗(Hanbury Brown)和Twiss实验证明出色的高速单光子发射。

Future quantum technology relies crucially on building quantum networks with high fidelity. To achieve this challenging goal, it is of utmost importance to connect single quantum systems in a way such that their emitted single-photons overlap with the highest possible degree of coherence. This requires perfect mode overlap of the emitted light of different emitters, which necessitates the use of single mode fibers. Here we present an advanced manufacturing approach to accomplish this task: we combine 3D printed complex micro-optics such as hemispherical and Weierstrass solid immersion lenses as well as total internal reflection solid immersion lenses on top of single InAs quantum dots with 3D printed optics on single mode fibers and compare their key features. Interestingly, the use of hemispherical solid immersion lenses further increases the localization accuracy of the emitters to below 1 nm when acquiring micro-photoluminescence maps. The system can be joined together and permanently fixed. This integrated system can be cooled by dipping into liquid helium, by a Stirling cryocooler or by a closed-cycle helium cryostat without the necessity for optical windows, as all access is through the integrated single mode fiber. We identify the ideal optical designs and present experiments that prove excellent high-rate single-photon emission by high-contrast Hanbury Brown and Twiss experiments.

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