• DocumentCode
    1850026
  • Title

    Differential phase shift quantum key distribution

  • Author

    Takesue, Hiroki ; Honjo, Toshimori ; Tamaki, Kiyoshi ; Tokura, Yasuhiro

  • Author_Institution
    NTT Basic Res. Labs., NTT Corp., Atsugi
  • fYear
    2008
  • fDate
    12-13 May 2008
  • Firstpage
    229
  • Lastpage
    236
  • Abstract
    Quantum key distribution (QKD) has been studied as an ultimate method for secure communications, and it now is emerging as a technology that can be deployed in real fibre networks. Here, we present our QKD experiments based on the differential phase shift QKD (DPS-QKD) protocol. A DPS-QKD system has a simple configuration that is easy to implement with conventional optical communication components, and it is suitable for a high clock rate system. Moreover, although the DPS-QKD system is implemented with an attenuated laser source, it is inherently secure against strong eavesdropping attacks called photon number splitting attacks, which pose a serious threat to conventional QKD systems with attenuated laser sources. We also describe three types of single photon detectors that are suitable for high-speed, long-distance QKD: an up- conversion detector, a superconducting single photon detector, and a sinusoidally gated InGaAs avalanche photodiode. We present our record setting QKD experiments that employed those detectors.
  • Keywords
    III-V semiconductors; avalanche photodiodes; differential phase shift keying; gallium arsenide; indium compounds; lasers; optical fibre networks; protocols; quantum cryptography; InGaAs; avalanche photodiode; communications security; differential phase shift keying; fibre networks; laser sources; optical communication components; photon number splitting attacks; protocol; quantum key distribution; single photon detectors; superconducting single photon; Clocks; Cryptographic protocols; Detectors; Indium gallium arsenide; Information security; Laboratories; Optical fiber communication; Public key cryptography; Quantum computing; Quantum mechanics; Cryptography; Differential phase shift keying; Security;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Innovations in NGN: Future Network and Services, 2008. K-INGN 2008. First ITU-T Kaleidoscope Academic Conference
  • Conference_Location
    Geneva
  • Print_ISBN
    978-92-61-12441-0
  • Type

    conf

  • DOI
    10.1109/KINGN.2008.4542270
  • Filename
    4542270