Unbounded Sharing of Nonlocality Using Projective Measurements
arXiv:2311.07977 · doi:10.1103/PhysRevLett.133.170201
Abstract
It is a common perception that a sharp projective measurement in one side of the Bell experiment destroys the entanglement of the shared state, thereby preventing the demonstration of sequential sharing of nonlocality. In contrast, we introduce a local randomness-assisted projective measurement protocol, enabling the sharing of nonlocality by an arbitrary number of sequential observers (Bobs) with a single spatially separated party Alice. Subsequently, a crucial feature of the interplay between the degrees of incompatibility of observables of both parties is revealed, enabling the unbounded sharing of nonlocality. Our findings, not only offer a new paradigm for understanding the fundamental nature of incompatibility in demonstrating quantum nonlocality but also pave a new path for various information processing tasks based on local randomness-assisted projective measurement.
References in corpus (9)
- Spherical Code Key Distribution Protocols for Qubits
- Sharing non-locality and non-trivial preparation contextuality using same family of Bell expressions
- Device-independent certification of Hilbert space dimension using a family of Bell expressions
- Device-independent certification of two bits of randomness from one entangled bit and Gisin's elegant Bell inequality
- Oblivious communication game, self-testing of projective and non-projective measurements and certification of randomness
- Device-independent self-testing of unsharp measurements
- Device-independent certification of maximal randomness from pure entangled two-qutrit states using non-projective measurements
- Extracting unambiguous information from a single qubit by sequential observers
- Certified Randomness From Steering Using Sequential Measurements