A bright and fast source of coherent single photons

被引:0
作者
Natasha Tomm
Alisa Javadi
Nadia Olympia Antoniadis
Daniel Najer
Matthias Christian Löbl
Alexander Rolf Korsch
Rüdiger Schott
Sascha René Valentin
Andreas Dirk Wieck
Arne Ludwig
Richard John Warburton
机构
[1] University of Basel,Department of Physics
[2] Ruhr-Universität Bochum,Lehrstuhl für Angewandte Festkörperphysik
来源
Nature Nanotechnology | 2021年 / 16卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
A single-photon source is an enabling technology in device-independent quantum communication1, quantum simulation2,3, and linear optics-based4 and measurement-based quantum computing5. These applications employ many photons and place stringent requirements on the efficiency of single-photon creation. The scaling on efficiency is typically an exponential function of the number of photons. Schemes taking full advantage of quantum superpositions also depend sensitively on the coherence of the photons, that is, their indistinguishability6. Here, we report a single-photon source with a high end-to-end efficiency. We employ gated quantum dots in an open, tunable microcavity7. The gating provides control of the charge and electrical tuning of the emission frequency; the high-quality material ensures low noise; and the tunability of the microcavity compensates for the lack of control in quantum dot position and emission frequency. Transmission through the top mirror is the dominant escape route for photons from the microcavity, and this output is well matched to a single-mode fibre. With this design, we can create a single photon at the output of the final optical fibre on-demand with a probability of up to 57% and with an average two-photon interference visibility of 97.5%. Coherence persists in trains of thousands of photons with single-photon creation at a repetition rate of 1 GHz.
引用
收藏
页码:399 / 403
页数:4
相关论文
共 45 条
[1]  
Barrett J(2005)No signaling and quantum key distribution Phys. Rev. Lett. 95 010503-284
[2]  
Hardy L(2019)Boson sampling with 20 input photons and a 60-mode interferometer in a 10 Phys. Rev. Lett. 123 250503-1464
[3]  
Kent A(2020)-dimensional Hilbert space Nat. Photon. 14 273-627
[4]  
Wang H(2007)Integrated photonic quantum technologies Phys. Rev. Lett. 98 190504-1994
[5]  
Wang J(2012)Fault-tolerant quantum computation with high threshold in two dimensions J. Mod. Opt. 59 1458-400
[6]  
Sciarrino F(2019)What are single photons good for? Nature 575 622-345
[7]  
Laing A(2004)A gated quantum dot strongly coupled to an optical microcavity Science 303 1992-775
[8]  
Thompson MG(2020)Deterministic generation of single photons from one atom trapped in a cavity Phys. Rev. A 102 052614-526
[9]  
Raussendorf R(2015)Indistinguishable photons from a trapped-ion quantum network node Rev. Mod. Phys. 87 347-929
[10]  
Harrington J(2016)Interfacing single photons and single quantum dots with photonic nanostructures Nat. Photon. 10 340-575