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Large-range frequency tuning of a narrow-linewidth quantum emitter

机译:窄线宽量子发射器的大范围频率调谐

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A hybrid system of a semiconductor quantum dot single photon source and a rubidium quantum memory represents a promising architecture for future photonic quantum repeaters. One of the key challenges lies in matching the emission frequency of quantum dots with the transition frequency of rubidium atoms while preserving the relevant emission properties. Here, we demonstrate the bidirectional frequency tuning of the emission from a narrow-linewidth (dose-to-transform-limited) quantum dot. The frequency tuning is based on a piezoelectric strain-amplification device, which can apply significant stress to thick bulk samples. The induced strain shifts the emission frequency of the quantum dot over a total range of 1.15 THz, about three orders of magnitude larger than its linewidth. Throughout the whole tuning process, both the spectral properties of the quantum dot and its single-photon emission characteristics are preserved. Our results show that external stress can be used as a promising tool for reversible frequency tuning of high-quality quantum dots and pave the wave toward the realization of a quantum dot-rubidium atom interface for quantum networking.
机译:半导体量子点单光子源和铷量子存储器的混合系统代表未来光子量子中继器的有希望的架构。其中一个关键挑战在于在保持相关发射特性的同时将量子点的发射频率与铷原子的过渡频率相匹配。这里,我们展示了来自窄线宽(剂量变换限制)量子点的发射的双向频率调谐。频率调谐基于压电应变扩增装置,其可以对厚散装样品施加显着的应力。诱导应变将量子点的发射频率从总范围的1.15THz,大约三个数量级大于其线宽。在整个整体调谐过程中,量子点的光谱特性和其单光子发射特性都是保存的。我们的结果表明,外部应力可用作高质量量子点的可逆频率调谐的有希望的工具,并朝着量子网络实现量子点 - 铷原子接口铺平波。

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  • 来源
    《Applied Physics Letters》 |2020年第8期|083106.1-083106.5|共5页
  • 作者单位

    Department of Physics University of Basel Klingelbergstrasse 82 CH-4056 Basel Switzerland;

    Department of Physics University of Basel Klingelbergstrasse 82 CH-4056 Basel Switzerland;

    Department of Physics University of Basel Klingelbergstrasse 82 CH-4056 Basel Switzerland;

    Institute for Integrative Nanosciences IFW Dresden Helmholtzstrasse 20 01069 Dresden Germany Hefei National Laboratory for Physical Sciences at the Microscale and Department of Modern Physics University of Science and Technology of China Hefei 230026 China;

    Department of Physics University of Basel Klingelbergstrasse 82 CH-4056 Basel Switzerland;

    Institute for Integrative Nanosciences IFW Dresden Helmholtzstrasse 20 01069 Dresden Germany;

    Institute of Semiconductor and Solid State Physics Johannes Kepler Universitaet Linz Altenbergerstrasse 69 4040 Linz Austria;

    Department of Physics University of Basel Klingelbergstrasse 82 CH-4056 Basel Switzerland;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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  • 入库时间 2022-08-18 22:18:00

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