A single-photon turnstile device

被引:426
|
作者
Kim, J
Benson, O
Kan, H
Yamamoto, Y [1 ]
机构
[1] Stanford Univ, Edward L Ginzton Lab, ERATO, Quantum Fluctuat Project, Stanford, CA 94305 USA
[2] Hamamatsu Photon Inc, ERATO, Quantum Fluctuat Project, Shizuoka 4340041, Japan
[3] Nippon Telegraph & Tel Corp, Basic Res Labs, Atsugi, Kanagawa 24301, Japan
关键词
D O I
10.1038/17295
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Quantum-mechanical interference between indistinguishable quantum particles profoundly affects their arrival time and counting statistics. Photons from a thermal source tend to arrive together (bunching) and their counting distribution is broader than the classical Poisson limit(1). Electrons from a thermal source, on the other hand, tend to arrive separately (anti-bunching) and their counting distribution is narrower than the classical Poisson limit(2-4). Manipulation of quantum-statistical properties of photons with various non-classical sources is at the heart of quantum optics: features normally characteristic of fermions-such as anti-bunching, sub-poissonian and squeezing (sub-shot-noise) behaviours-have now been demonstrates. A single-photon turnstile device was proposed(6-8) to realize an effect similar to conductance quantization. Only one electron can occupy a single state owing to the Pauli exclusion principle and, for an electron waveguide that supports only one propagating transverse mode, this leads to the quantization of electrical conductance: the conductance of each propagating mode is then given by G(Q) = e(2)/h (where e is the charge of the electron and h is Planck's constant; ref. 9), Here we report experimental progress towards generation of a similar now of single photons with a well regulated time interval.
引用
收藏
页码:500 / 503
页数:4
相关论文
共 50 条
  • [1] A single-photon turnstile device
    J. Kim
    O. Benson
    H. Kan
    Y. Yamamoto
    [J]. Nature, 1999, 397 : 500 - 503
  • [2] A quantum dot single-photon turnstile device
    Michler, P
    Kiraz, A
    Becher, C
    Schoenfeld, WV
    Petroff, PM
    Zhang, LD
    Hu, E
    Imamoglu, A
    [J]. SCIENCE, 2000, 290 (5500) : 2282 - 2285
  • [3] Single-photon turnstile device: simultaneous Coulomb blockade for electrons and holes
    Kim, J
    Benson, O
    Kan, H
    Yamamoto, Y
    [J]. SEMICONDUCTOR SCIENCE AND TECHNOLOGY, 1998, 13 (8A) : A127 - A129
  • [4] Single photon turnstile device
    Yamamoto, Y
    [J]. QUANTUM OPTICS OF SMALL STRUCTURES, 2000, 51 : 111 - 122
  • [5] QUANTUM-DOT SINGLE-PHOTON AND ELECTRON-HOLE TURNSTILE DEVICES
    IMAMOGLU, A
    YAMAMOTO, Y
    [J]. COMPOUND SEMICONDUCTORS 1994, 1995, (141): : 879 - 884
  • [6] Indistinguishable photons from a single-photon device
    Charles Santori
    David Fattal
    Jelena Vučković
    Glenn S. Solomon
    Yoshihisa Yamamoto
    [J]. Nature, 2002, 419 : 594 - 597
  • [7] Indistinguishable photons from a single-photon device
    Santori, C
    Fattal, D
    Vuckovic, J
    Solomon, GS
    Yamamoto, Y
    [J]. NATURE, 2002, 419 (6907) : 594 - 597
  • [8] Proposal for a single-photon silicon device based on the unconventional photon blockade
    Flayac, Hugo
    Gerace, Dario
    Savona, Vincenzo
    [J]. 2014 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO), 2014,
  • [9] Electrically pumped single-photon emission up to 80 K - Towards a commercial single-photon emitting device
    Reischle, M.
    Beirne, G. J.
    Schulz, W. -M.
    Eichfelder, M.
    Rossbach, R.
    Jetter, M.
    Michler, P.
    [J]. PHYSICS OF SEMICONDUCTORS, 2009, 1199 : 483 - 484
  • [10] All-fiber device for single-photon detection
    Dai, Yue
    Jia, Kunpeng
    Zhu, Guanghao
    Li, Hui
    Fei, Yue
    Guo, Yuqing
    Yuan, Hang
    Wang, Hao
    Jia, Xiaoqing
    Zhao, Qingyuan
    Kang, Lin
    Chen, Jian
    Zhu, Shi-ning
    Wu, Peiheng
    Xie, Zhenda
    Zhang, Labao
    [J]. PHOTONIX, 2023, 4 (01)