论文标题
确定性制造的应变量量子点单光子源在电信O带中排放
Deterministically fabricated strain-tunable quantum dot single-photon sources emitting in the telecom O-band
论文作者
论文摘要
大多数量子通信方案旨在长距离传播量子信息。在量子中继器概念中,传输线细分为较短的链接,通过通过铃铛测量纠缠分布互连,以克服固有的通道损失。这个概念需要在每个中继器节点内具有高度多光子抑制和高难以区分性的按需单光子源。对于中继器的成功操作,远程量子光源的光谱匹配至关重要。我们提出了一个可以调谐的单光子源在电信O波段中排放的,具有基于光纤的量子通信网络的构建块的潜力。嵌入Ingaas量子点(QD)的薄膜通过金热压缩键合在压电执行器上。在这里,薄金层同时充当QD-Micromesa的电气接触,应变传输介质和宽带背面镜。 QD-Micromesa的纳米制作基于原位电子束光刻,这使得可以确定性地将预选的单个QD确定地整合到整体式Micromesa结构中心。 QD预选基于不同的单QD特性,信号强度和发射能。结合应变诱导的微调,这提供了一种可靠的方法,可以在远程QD的发射中实现光谱共振。我们表明,光谱调整对$ g^{(2)}(0)$的多光子抑制没有可检测的影响,低至2-4%,并且可以使用封闭环的光学反馈将发射稳定至4 $μ$ eV的精度。
Most quantum communication schemes aim at the long-distance transmission of quantum information. In the quantum repeater concept, the transmission line is subdivided into shorter links interconnected by entanglement distribution via Bell-state measurements to overcome inherent channel losses. This concept requires on-demand single-photon sources with a high degree of multi-photon suppression and high indistinguishability within each repeater node. For a successful operation of the repeater, a spectral matching of remote quantum light sources is essential. We present a spectrally tunable single-photon source emitting in the telecom O-band with the potential to function as a building block of a quantum communication network based on optical fibers. A thin membrane of GaAs embedding InGaAs quantum dots (QDs) is attached onto a piezoelectric actuator via gold thermocompression bonding. Here the thin gold layer acts simultaneously as an electrical contact, strain transmission medium and broadband backside mirror for the QD-micromesa. The nanofabrication of the QD-micromesa is based on in-situ electron-beam lithography, which makes it possible to integrate pre-selected single QDs deterministically into the center of monolithic micromesa structures. The QD pre-selection is based on distinct single-QD properties, signal intensity and emission energy. In combination with strain-induced fine tuning this offers a robust method to achieve spectral resonance in the emission of remote QDs. We show that the spectral tuning has no detectable influence on the multi-photon suppression with $g^{(2)}(0)$ as low as 2-4% and that the emission can be stabilized to an accuracy of 4 $μ$eV using a closed-loop optical feedback.