Experimental Quantum Target Detection Approaching the Fundamental Helstrom Limit
arXiv:2107.11577 · doi:10.1103/PhysRevLett.127.040504
Abstract
Quantum target detection is an emerging application that utilizes entanglement to enhance the sensing of the presence of an object. Although several experimental demonstrations for certain situations have been reported recently, the single-shot detection limit imposed by the Helstrom limit has not been reached because of the unknown optimum measurements. Here we report an experimental demonstration of quantum target detection, also known as quantum illumination, in the single-photon limit. In our experiment, one photon of the maximally entangled photon pair is employed as the probe signal and the corresponding optimum measurement is implemented at the receiver. We explore the detection problem in different regions of the parameter space and verify that the quantum advantage exists even in a forbidden region of the conventional illumination, where all classical schemes become useless. Our results indicate that quantum illumination breaks the classical limit for up to 40%, while approaching the quantum limit imposed by the Helstrom limit. These results not only demonstrate the advantage of quantum illumination, but also manifest its valuable potential of target detection.
References in corpus (15)
- Beating the Standard Quantum Limit with Four Entangled Photons
- Quantum Illumination with Gaussian States
- Microwave Quantum Illumination
- Quantum Illumination at the Microwave Wavelengths
- Experimental realisation of quantum illumination
- Entanglement-Enhanced Sensing in a Lossy and Noisy Environment
- Gaussian-state quantum-illumination receivers for target detection
- Optimum mixed-state discrimination for noisy entanglement-enhanced sensing
- Inferring causal structure: a quantum advantage
- Quantum illumination for enhanced detection of Rayleigh-fading targets
- Quantum target detection using entangled photons
- Overarching framework between Gaussian quantum discord and Gaussian quantum illumination
- Experimental investigation of linear-optics-based quantum target detection
- The maximum advantage of quantum illumination
- Optomechanical Microwave Quantum Illumination in Weak Coupling Regime