论文标题
来自确定性位置的纳米量量子点的多路复用单光子
Multiplexed Single Photons from Deterministically Positioned Nanowire Quantum Dots
论文作者
论文摘要
固态量子发射器是未能区分或纠缠的光子的极好来源,可以容纳长期寿命的旋转记忆,对于光子量子信息应用的关键资源。但是,它们的可扩展性仍然是一个重大的挑战。在这里,我们向从片上的多个独立量子点(片)中提供了可扩展的技术,以用于使用片外的光纤网络。通过将多核纤维掺入共聚焦显微镜中,并以空间匹配多个焦点,在这种情况下,将多核纤维结合到共聚焦显微镜中,以实现多路复用,在这种情况下,将多核光纤与多核显微镜相匹配,以使其与确定性定位的纳米线阵列中的量子点相匹配。首先,我们报告了从单个纳米线量子点在谐振的两光子激发下从单个纳米线量子点发射的相干控制。然后,作为原则证明,我们在纳米线阵列上执行并行光谱,以识别两个在不同位置的几乎相同的量子点,随后通过外部磁场调整为共振。然后实现从这两个量子点的无背景单光子的多路复用。我们的方法适用于所有类型的量子发射器,可以轻松地扩展到多重$> 100 $ Quantum Light源,从而为基于光子的量子技术提供了硬件的突破。即时应用包括量子通信,量子模拟和量子计算。
Solid-state quantum emitters are excellent sources of on-demand indistinguishable or entangled photons and can host long-lived spin memories, crucial resources for photonic quantum information applications. However, their scalability remains an outstanding challenge. Here we present a scalable technique to multiplex streams of photons from multiple independent quantum dots, on-chip, into a fiber network for use off-chip. Multiplexing is achieved by incorporating a multi-core fiber into a confocal microscope and spatially matching the multiple foci, seven in this case, to quantum dots in an array of deterministically positioned nanowires. First, we report the coherent control of the emission of biexciton-exciton cascade from a single nanowire quantum dot under resonant two-photon excitation. Then, as a proof-of-principle demonstration, we perform parallel spectroscopy on the nanowire array to identify two nearly identical quantum dots at different positions which are subsequently tuned into resonance with an external magnetic field. Multiplexing of background-free single photons from these two quantum dots is then achieved. Our approach, applicable to all types of quantum emitters, can readily be scaled up to multiplex $>100$ quantum light sources, providing a breakthrough in hardware for photonic based quantum technologies. Immediate applications include quantum communication, quantum simulation, and quantum computation.