Entanglement witnessing with untrusted detectors
arXiv:2301.13680 · doi:10.1088/1751-8121/acfc08
Abstract
We consider the problem of entanglement detection in the presence of faulty, potentially malicious detectors. A common - and, as of yet, the only - approach to this problem is to perform a Bell test in order to identify nonlocality of the measured entangled state. However, there are two significant drawbacks in this approach: the requirement to exceed a critical, and often high, detection efficiency, and much lower noise tolerance. In this paper, we propose an alternative approach to this problem, which is resilient to the detection loophole and is based on the standard tool of entanglement witness. We discuss how the two main techniques to detection losses, namely the discard and assignment strategies, apply to entanglement witnessing. We demonstrate using the example of a two-qubit Bell state that the critical detection efficiency can be significantly reduced compared to the Bell test approach.
16 pages, 2 figures
References in corpus (12)
- Satellite-to-ground quantum key distribution
- Free-Space distribution of entanglement and single photons over 144 km
- Device-independent quantum key distribution secure against collective attacks
- Progress in satellite quantum key distribution
- A complete family of separability criteria
- Semi-device-independent security of one-way quantum key distribution
- Controlling passively-quenched single photon detectors by bright light
- Squashing Models for Optical Measurements in Quantum Communication
- Detection loophole in asymmetric Bell experiments
- Detection Loophole in Bell experiments: How post-selected local correlations can look non-local
- Entanglement witnesses and a loophole problem
- Exponentially decreasing critical detection efficiency for any Bell inequality