English

Designing three-way entangled and nonlocal two-way entangled single particle states via alternate quantum walks

Quantum Physics 2025-01-14 v3 Disordered Systems and Neural Networks Systems and Control Systems and Control Optics

Abstract

Entanglement with single-particle states is advantageous in quantum technology because of their ability to encode and process information more securely than their multi-particle analogs. Threeway and nonlocal two-way entangled single-particle states are desirable in this context. Herein, we generate genuine three-way entanglement from an initially separable state involving three degrees of freedom of a quantum particle, which evolves via a 2D alternate quantum walk employing a resource-saving single-qubit coin. We achieve maximum possible values for the three-way entanglement quantified by the {\pi}-tangle between the three degrees of freedom. We also generate optimal nonlocal two-way entanglement, quantified by the negativity between the nonlocal position degrees of freedom of the particle. This prepared architecture using quantum walks can be experimentally realized with a photon.

Keywords

Cite

@article{arxiv.2402.05080,
  title  = {Designing three-way entangled and nonlocal two-way entangled single particle states via alternate quantum walks},
  author = {Dinesh Kumar Panda and Colin Benjamin},
  journal= {arXiv preprint arXiv:2402.05080},
  year   = {2025}
}

Comments

17 pages, 11 figures, 3 tables, accepted for publication in Phys. Rev. A