English

Identical particles as a genuine non-local resource

Quantum Physics 2024-04-29 v1

Abstract

All particles of the same type are indistinguishable, according to a fundamental quantum principle. This entails a description of many-particle states using symmetrised or anti-symmetrised wave functions, which turn out to be formally entangled. However, the measurement of individual particles is hampered by a mode description in the second-quantised theory that masks this entanglement. Is it nonetheless possible to use such states as a resource in Bell-type experiments? More specifically, which states of identical particles can demonstrate non-local correlations in passive linear optical setups that are considered purely classical component of the experiment? Here, the problem is fully solved for multi-particle states with a definite number of identical particles. We show that all fermion states and most boson states provide a sufficient quantum resource to exhibit non-locality in classical optical setups. The only exception is a special class of boson states that are reducible to a single mode, which turns out to be locally simulable for any passive linear optical experiment. This finding highlights the connection between the basic concept of particle indistinguishability and Bell non-locality, which can be observed by classical means for almost every state of identical particles.

Keywords

Cite

@article{arxiv.2404.17339,
  title  = {Identical particles as a genuine non-local resource},
  author = {Pawel Blasiak and Marcin Markiewicz},
  journal= {arXiv preprint arXiv:2404.17339},
  year   = {2024}
}

Comments

11 pages, 6 figures; includes Supplementary Information (10 pages, 2 figures)

R2 v1 2026-06-28T16:07:36.971Z