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纳米线量子点调谐到原子共振。

Nanowire Quantum Dots Tuned to Atomic Resonances.

机构信息

DTU Department of Photonics Engineering , Technical University of Denmark , 2800 Kgs. Lyngby , Denmark.

St. Petersburg Academic University , RAS , St. Petersburg 194021 , Russia.

出版信息

Nano Lett. 2018 Nov 14;18(11):7217-7221. doi: 10.1021/acs.nanolett.8b03363. Epub 2018 Oct 18.

Abstract

Quantum dots tuned to atomic resonances represent an emerging field of hybrid quantum systems where the advantages of quantum dots and natural atoms can be combined. Embedding quantum dots in nanowires boosts these systems with a set of powerful possibilities, such as precise positioning of the emitters, excellent photon extraction efficiency and direct electrical contacting of quantum dots. Notably, nanowire structures can be grown on silicon substrates, allowing for a straightforward integration with silicon-based photonic devices. In this work we show controlled growth of nanowire-quantum-dot structures on silicon, frequency tuned to atomic transitions. We grow GaAs quantum dots in AlGaAs nanowires with a nearly pure crystal structure and excellent optical properties. We precisely control the dimensions of quantum dots and their position inside nanowires and demonstrate that the emission wavelength can be engineered over the range of at least 30 nm around 765 nm. By applying an external magnetic field, we are able to fine-tune the emission frequency of our nanowire quantum dots to the D transition of Rb. We use the Rb transitions to precisely measure the actual spectral line width of the photons emitted from a nanowire quantum dot to be 9.4 ± 0.7 μeV, under nonresonant excitation. Our work brings highly desirable functionalities to quantum technologies, enabling, for instance, a realization of a quantum network, based on an arbitrary number of nanowire single-photon sources, all operating at the same frequency of an atomic transition.

摘要

调谐到原子共振的量子点代表了一种新兴的混合量子系统领域,其中可以结合量子点和天然原子的优势。将量子点嵌入纳米线中为这些系统带来了一系列强大的可能性,例如发射器的精确定位、优异的光子提取效率以及量子点的直接电接触。值得注意的是,纳米线结构可以在硅衬底上生长,从而可以与基于硅的光子器件进行直接集成。在这项工作中,我们展示了在硅上控制生长频率调谐到原子跃迁的纳米线-量子点结构。我们在几乎纯晶体结构和优异光学性质的 AlGaAs 纳米线中生长 GaAs 量子点。我们精确控制量子点的尺寸及其在纳米线中的位置,并证明发射波长可以在至少 30nm 的范围内围绕 765nm 进行工程设计。通过施加外磁场,我们能够将纳米线量子点的发射频率微调至 Rb 的 D 跃迁。我们使用 Rb 跃迁来精确测量从纳米线量子点发射的光子的实际光谱线宽为 9.4±0.7μeV,在非共振激发下。我们的工作为量子技术带来了非常理想的功能,例如,可以实现基于任意数量的纳米线单光子源的量子网络,所有这些源都在原子跃迁的相同频率下运行。

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