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Complete orbital angular momentum Bell-state measurement and superdense coding

arXiv
Authors: Ling-Jun Kong, Rui Liu, Zhou-Xiang Wang, Yu Si, Wen-Rong Qi, Shuang-Yin Huang, Chenghou Tu, Yongnan Li, Wei Hu, Fei Xu, Yan-Qing Lu, Hui-Tian Wang

Year

2017

Paper ID

7541

Status

Preprint

Abstract Read

~2 min

Abstract Words

131

Citations

N/A

Abstract

Quantum protocols require access to large-scale entangled quantum states, due to the requirement of channel capacity. As a promising candidate, the high-dimensional orbital angular momentum (OAM) entangled states have been implemented, but only one of four OAM Bell states in each individual subspace can be distinguished. Here we demonstrate the first realization of complete OAM Bell-state measurement (OAM-BSM) in an individual subspace, by seeking the suitable unitary matrix performable using only linear optics and breaking the degeneracy of four OAM Bell states in ancillary polarization dimension. We further realize the superdense coding via our complete OAMBSM with the average success probability of 82% and the channel capacity of 1.1(4) bits. This work opens the window for increasing the channel capacity and extending the applications of OAM quantum states in quantum information in future.

Why This Paper Matters

  • This paper contributes to the Quantum Foundations research area in the Quantum Articles archive.
  • It adds a 2017 reference point for readers tracking recent quantum research.
  • Quantum protocols require access to large-scale entangled quantum states, due to the requirement of channel capacity.

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