Your browser doesn't support javascript.
loading
Simultaneous entanglement swapping of multiple orbital angular momentum states of light.
Zhang, Yingwen; Agnew, Megan; Roger, Thomas; Roux, Filippus S; Konrad, Thomas; Faccio, Daniele; Leach, Jonathan; Forbes, Andrew.
Afiliação
  • Zhang Y; CSIR National Laser Centre, PO Box 395, Pretoria, 0001, South Africa.
  • Agnew M; Department of Physics, University of Ottawa, 150 Louis Pasteur, Ottawa, Ontario, K1N 6N5, Canada.
  • Roger T; IPaQS, SUPA, Heriot-Watt, Edinburgh, EH14 4AS, UK.
  • Roux FS; IPaQS, SUPA, Heriot-Watt, Edinburgh, EH14 4AS, UK.
  • Konrad T; CSIR National Laser Centre, PO Box 395, Pretoria, 0001, South Africa.
  • Faccio D; School of Physics, University of Witwatersrand, Johannesburg, 2000, South Africa.
  • Leach J; National Metrology Institute of South Africa, Meiring Naude Road, Pretoria, South Africa.
  • Forbes A; School of Chemistry and Physics, University of KwaZulu-Natal, Private Bag X54001, Durban, 4000, South Africa.
Nat Commun ; 8(1): 632, 2017 09 21.
Article em En | MEDLINE | ID: mdl-28935969
ABSTRACT
High-bit-rate long-distance quantum communication is a proposed technology for future communication networks and relies on high-dimensional quantum entanglement as a core resource. While it is known that spatial modes of light provide an avenue for high-dimensional entanglement, the ability to transport such quantum states robustly over long distances remains challenging. To overcome this, entanglement swapping may be used to generate remote quantum correlations between particles that have not interacted; this is the core ingredient of a quantum repeater, akin to repeaters in optical fibre networks. Here we demonstrate entanglement swapping of multiple orbital angular momentum states of light. Our approach does not distinguish between different anti-symmetric states, and thus entanglement swapping occurs for several thousand pairs of spatial light modes simultaneously. This work represents the first step towards a quantum network for high-dimensional entangled states and provides a test bed for fundamental tests of quantum science.Entanglement swapping in high dimensions requires large numbers of entangled photons and consequently suffers from low photon flux. Here the authors demonstrate entanglement swapping of multiple spatial modes of light simultaneously, without the need for increasing the photon numbers with dimension.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2017 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2017 Tipo de documento: Article