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InP-based single-photon sources operating at telecom C-band with increased extraction efficiency

机译:基于INP的单光子源在电信C波段运行,提取效率提高

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摘要

In this work, we demonstrate a triggered single-photon source operating at the telecom C-band with photon extraction efficiency exceeding any reported values in this range. The non-classical light emission with low probability of the multiphoton events is realized with single InAs quantum dots (QDs) grown by molecular beam epitaxy and embedded directly in an InP matrix. Low QD spatial density on the order of 5 × 10~8 cm~(-2) to ~2 × 10~9 cm~(-2) and symmetric shape of these nanostructures together with spectral range of emission make them relevant for quantum communication applications. The engineering of extraction efficiency is realized by combining a bottom distributed Bragg reflector consisting of 25 pairs of InP/In_(0.53)Ga_(0.37)Al_(0.1) As layers and cylindrical photonic confinement structures. Realization of such a technologically non-demanding approach even in a non-deterministic fashion results in photon extraction efficiency of (13.3 ± 2) % into 0.4 numerical aperture detection optics at approximately 1560 nm emission wavelength, i.e., close to the center of the telecom C-band.
机译:在这项工作中,我们展示了在电信C波段操作的触发单光子源,光子提取效率超过该范围内的任何报道的值。具有由分子束外延生长的单个InAs量子点(QDS)实现具有低概率的非古典光发射,并直接在INP矩阵中嵌入。低QD空间密度为5×10〜8cm〜(-2)至约2×10〜9cm〜(-2)和这些纳米结构的对称形状与光谱范围发射,使它们与量子通信相关应用程序。通过将由25对INP / IN_(0.53)GA_(0.37)AL_(0.1)组成的底部分布式布拉格反射器作为层和圆柱光子限制结构组成的底部分布式布拉格反射器来实现提取效率的工程。即使以非确定性方式实现这种技术不要求的方法也导致(13.3±2)%的光子提取效率为0.4数值孔径检测光学,在大约1560nm发射波长,即靠近电信中心C波段。

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  • 来源
    《Applied Physics Letters》 |2021年第22期|221101.1-221101.6|共6页
  • 作者单位

    Department of Experimental Physics Faculty of Fundamental Problems of Technology Wroclaw University of Science and Technology Wybrzeze Wyspianskiego 27 50-370 Wroclaw Poland;

    Department of Experimental Physics Faculty of Fundamental Problems of Technology Wroclaw University of Science and Technology Wybrzeze Wyspianskiego 27 50-370 Wroclaw Poland;

    Department of Experimental Physics Faculty of Fundamental Problems of Technology Wroclaw University of Science and Technology Wybrzeze Wyspianskiego 27 50-370 Wroclaw Poland;

    Department of Experimental Physics Faculty of Fundamental Problems of Technology Wroclaw University of Science and Technology Wybrzeze Wyspianskiego 27 50-370 Wroclaw Poland;

    Department of Experimental Physics Faculty of Fundamental Problems of Technology Wroclaw University of Science and Technology Wybrzeze Wyspianskiego 27 50-370 Wroclaw Poland;

    Department of Experimental Physics Faculty of Fundamental Problems of Technology Wroclaw University of Science and Technology Wybrzeze Wyspianskiego 27 50-370 Wroclaw Poland;

    Department of Experimental Physics Faculty of Fundamental Problems of Technology Wroclaw University of Science and Technology Wybrzeze Wyspianskiego 27 50-370 Wroclaw Poland;

    Institute of Nanostructure Technologies and Analytics (INA) Center for Interdisciplinary Nanostructure Science and Technology (CINSaT) University of Kassel Heinrich-Plett-Str. 40 34132 Kassel Germany;

    Department of Experimental Physics Faculty of Fundamental Problems of Technology Wroclaw University of Science and Technology Wybrzeze Wyspianskiego 27 50-370 Wroclaw Poland;

    Institute of Nanostructure Technologies and Analytics (INA) Center for Interdisciplinary Nanostructure Science and Technology (CINSaT) University of Kassel Heinrich-Plett-Str. 40 34132 Kassel Germany;

  • 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);
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  • 正文语种 eng
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