论文标题

量子点单光子发射耦合到具有3D印刷微观目标的单模纤维中

Quantum dot single-photon emission coupled into single-mode fibers with 3D printed micro-objectives

论文作者

Bremer, Lucas, Weber, Ksenia, Fischbach, Sarah, Thiele, Simon, Schmidt, Marco, Kakganskiy, Arsenty, Rodt, Sven, Herkommer, Alois, Sartison, Marc, Portalupi, Simone Luca, Michler, Peter, Giessen, Harald, Reitzenstein, Stephan

论文摘要

具有较高光子萃取效率的用户友好型单光子源是光子量子应用的至关重要的构件。对于许多这些应用,例如长距离量子键分布,必须使用单模光纤,这是必须的,这导致对设备设计和制造的严格要求。我们报告了与3D打印的微观目标与单模单模式在芯片纤维耦合器结合使用的量子点Microlens的片上积分。实用的量子设备是通过确定QD-Microlens通过原位电子束光刻和3D两光子激光写入芯片微观目标和光纤持有器的3D两光子激光器来实现的。带有Microlens的QD是有效的单光子源,其发射是通过芯片微观目标准直的。第二个聚合物微丝片位于单模光纤的末端,并确保准直的光有效地耦合到纤维芯中。为此,将纤维放置在片上纤维CHUCK中,由于高分辨率两光子直接激光写作的亚$ $ m $ m $ m的处理精度,该纤维与QD-Microlens完全一致。这样,我们获得了具有宽带光子提取效率的完全集成的高质量量子装置,单模光纤耦合效率为26%,单模纤维输出下的单光子磁通量为1.5 MHz,在脉冲光学兴奋下的多光子概率为13%。此外,开发的光纤耦合量子设备的稳定设计使其对于集成到用户友好的插件量子应用程序方面具有很高的吸引力。

User-friendly single-photon sources with high photon-extraction efficiency are crucial building blocks for photonic quantum applications. For many of these applications, such as long-distance quantum key distribution, the use of single-mode optical fibers is mandatory, which leads to stringent requirements regarding the device design and fabrication. We report on the on-chip integration of a quantum dot microlens with a 3D-printed micro-objective in combination with a single-mode on-chip fiber coupler. The practical quantum device is realized by deterministic fabrication of the QD-microlens via in-situ electron-beam lithography and 3D two-photon laser writing of the on-chip micro-objective and fiber-holder. The QD with microlens is an efficient single-photon source, whose emission is collimated by the on-chip micro-objective. A second polymer microlens is located at the end facet of the single-mode fiber and ensures that the collimated light is efficiently coupled into the fiber core. For this purpose, the fiber is placed in the on-chip fiber chuck, which is precisely aligned to the QD-microlens thanks to the sub-$μ$m processing accuracy of high-resolution two-photon direct laser writing. This way, we obtain a fully integrated high-quality quantum device with broadband photon extraction efficiency, a single-mode fiber-coupling efficiency of 26%, a single-photon flux of 1.5 MHz at single-mode fibre output and a multi-photon probability of 13 % under pulsed optical excitation. In addition, the stable design of the developed fiber-coupled quantum device makes it highly attractive for integration into user-friendly plug-and-play quantum applications.

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