Degrees of Entanglement in Systems of Three Indistinguishable Bosons: Revisiting the Greenberger-Horne-Zeilinge State
arXiv:2412.19246 · doi:10.1103/PhysRevA.111.042414
Abstract
While the concept of entanglement for distinguishable particles is well established, defining entanglement and non-locality in systems of indistinguishable particles, which require the use of the (anti)symmetrization postulate, remains challenging, and multiple approaches have been proposed to address this issue. In this work we study the problem of detecting genuine tripartite entanglement among systems of indistinguishable bosons. A genuine entangled state is one that cannot be separable under any bipartition, where separability in the indistinguishable regime is defined by the existence of single particle properties within each subsystem, without the possibility of knowing which property belongs to which subsystem. We use an algorithm that allows us to search for these single particle properties and, consequently, rank states according to their degree of separability. In particular, we introduce a state of indistinguishable bosons with analogous properties to those of the standard GHZ state.
10 pages
References in corpus (14)
- General criterion for the entanglement of two indistinguishable particles
- Perspective: Toward large-scale fault-tolerant universal photonic quantum computing
- Entanglement in indistinguishable particle systems
- Separability Criteria and Entanglement Measures for Pure States of N Identical Fermions
- Generalized W-Class State and its Monogamy Relation
- Entanglement of Identical Particles
- Experimental control of remote spatial indistinguishability of photons to realize entanglement and teleportation
- Useful entanglement from the Pauli principle
- Entanglement of indistinguishable particles: a comparative study
- Many-body entanglement in fermion systems
- Physical Entanglement Between Localized Orbitals
- Number-phase uncertainty relations and bipartite entanglement detection in spin ensembles
- Generation of genuine multipartite entangled states via indistinguishability of identical particles
- Generation of tripartite entangled states with fermionic systems