4.8 Article

Optimized Detection of High-Dimensional Entanglement

Journal

PHYSICAL REVIEW LETTERS
Volume 127, Issue 22, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevLett.127.220501

Keywords

-

Funding

  1. National Key R&D Program of China [2018YFA0306703, 2021YFE0113100, 2017YFA0304100]
  2. National Natural Science Foundation of China [11774335, 11734015, 11874345, 11821404, 11904357, 12174367]
  3. Key Research Program of Frontier Sciences, CAS [QYZDY-SSW-SLH003]
  4. Science Foundation of the CAS [ZDRW-XH-2019-1]
  5. Fundamental Research Funds for the Central Universities
  6. USTC Tang Scholarship
  7. Science and Technological Fund of Anhui Province for Outstanding Youth [2008085J02]
  8. Austrian Science Fund (FWF) [P 30947]
  9. Austrian Academy of Sciences (oAW)
  10. Joint Center for Extreme Photonics (JCEP)

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The study introduces a flexible method to construct optimal entanglement detection tests for faithful and unfaithful states, applicable to various experimental techniques. By using protocols generated from this method, researchers successfully experimentally certified two- and three-unfaithful entanglement in four-dimensional photonic states.
Entanglement detection is one of the most conventional tasks in quantum information processing. While most experimental demonstrations of high-dimensional entanglement rely on fidelity-based witnesses, these are powerless to detect entanglement within a large class of entangled quantum states, the so-called unfaithful states. In this Letter, we introduce a highly flexible automated method to construct optimal tests for entanglement detection given a bipartite target state of arbitrary dimension, faithful or unfaithful, and a set of local measurement operators. By restricting the number or complexity of the considered measurement settings, our method outputs the most convenient protocol which can be implemented using a wide range of experimental techniques such as photons, superconducting qudits, cold atoms, or trapped ions. With an experimental quantum optics setup that can prepare and measure arbitrary highdimensional mixed states, we implement some three-setting protocols generated by our method. These protocols allow us to experimentally certify two- and three-unfaithful entanglement in four-dimensional photonic states, some of which contain well above 50% of noise.

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