纳米线量子点到原子跃迁的可逆调谐

IF 6.7 1区 物理与天体物理 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Rubayet Al Maruf*, Sreesh Venuturumilli, Divya Bharadwaj, Paul Anderson, Jiawei Qiu, Yujia Yuan, Mohd Zeeshan, Behrooz Semnani, Philip J. Poole, Dan Dalacu, Kevin Resch, Michael E. Reimer and Michal Bajcsy, 
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引用次数: 0

摘要

嵌入半导体光子纳米线(NW-QDs)中的量子点能够以高重复率产生单光子和纠缠光子对。这些光子可以有效地从光子纳米线耦合到自由空间或光纤中,这要归功于纳米线的尖端,它提供了阻抗匹配。然而,以可逆的方式精确控制NW-QD发射频率,不降低发射光子的特性,并且可以独立地用于同一芯片上的单个NW-QD,迄今为止仍然是一个挑战。解决这个问题对于将光子与需要MHz到sub-GHz精度的量子系统相连接的应用至关重要,例如在量子网络中充当存储器的原子集成。在这里,我们展示了一种可逆调谐方法,可以以低于GHz的精度对NW-QD的发射频率进行300 GHz以上的调谐。我们通过气体冷凝来实现这一点,然后用局部激光烧蚀来部分逆转。这个过程可以很好地调节施加在量子点上的应力,从而调整它们的发射频率。我们通过调整原子共振中发射的单光子的频率来探测其吸收和色散,从而验证了该方法的精度和稳定性。我们观察到在d1线共振处,热铯蒸气中NW-QD的单光子吸收高达80%,并且与d1线基态的超精细跃迁相关的群速度降低了75倍。我们观察到在高达300 GHz的调谐中,NW-QD发射的二阶自相关函数、寿命或线宽没有明显的影响,并且当调谐到100 GHz时,我们看到对NW-QD精细结构分裂的影响最小。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Reversible Tuning of Nanowire Quantum Dot to Atomic Transitions

Reversible Tuning of Nanowire Quantum Dot to Atomic Transitions

Quantum dots embedded in semiconductor photonic nanowires (NW-QDs) can deterministically produce single-photons and entangled photon pairs at high repetition rates. These photons can be efficiently coupled from the photonic nanowire into free space or optical fibers thanks to the sharp tip of the nanowire, which provides impedance matching. However, precise control of the NW-QD emission frequency in a way that is reversible, does not degrade the properties of the emitted photons, and can be used independently for individual NW-QDs on the same chip has so far remained a challenge. Resolving this issue is crucial for applications when interfacing the photons with quantum systems that require MHz to sub-GHz precision, such as atomic ensembles acting as memories in a quantum network. Here, we demonstrate a reversible tuning method that can tune the emission frequency of a NW-QD by more than 300 GHz with sub-GHz precision. We achieve this through gas condensation that is then partially reversed with localized laser ablation. This process finely adjusts stress applied to the quantum dots, thereby tuning their emission frequency. We validate the precision and stability of this method by tuning the frequency of the emitted single-photons across an atomic resonance to probe its absorption and dispersion. We observed up to 80% absorption of the single-photons from NW-QD in hot cesium vapor at the D1-line resonances and a 75-fold decrease in group velocity associated with the hyperfine transitions of the D1-line ground states. We observed no discernible effects in the second-order autocorrelation function, lifetime, or linewidth of the NW-QD emission for up to 300 GHz of tuning and we saw minimal effects on the fine structure splitting of the NW-QD when tuning up to 100 GHz.

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来源期刊
ACS Photonics
ACS Photonics NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
11.90
自引率
5.70%
发文量
438
审稿时长
2.3 months
期刊介绍: Published as soon as accepted and summarized in monthly issues, ACS Photonics will publish Research Articles, Letters, Perspectives, and Reviews, to encompass the full scope of published research in this field.
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