Super-Resolving Quantum Radar: Coherent-State Sources with Homodyne Detection Suffice to Beat the Diffraction Limit
arXiv:1305.4162 · doi:10.1063/1.4829016
Abstract
There has been much recent interest in quantum metrology for applications to sub-Raleigh ranging and remote sensing such as in quantum radar. For quantum radar, atmospheric absorption and diffraction rapidly degrades any actively transmitted quantum states of light, such as N00N states, so that for this high-loss regime the optimal strategy is to transmit coherent states of light, which suffer no worse loss than the linear Beer's law for classical radar attenuation, and which provide sensitivity at the shot-noise limit in the returned power. We show that coherent radar radiation sources, coupled with a quantum homodyne detection scheme, provide both longitudinal and angular super-resolution much below the Rayleigh diffraction limit, with sensitivity at shot-noise in terms of the detected photon power. Our approach provides a template for the development of a complete super-resolving quantum radar system with currently available technology.
23 pages, content is identical to published version
References in corpus (9)
- Quantum Optical Metrology -- The Lowdown on High-N00N States
- Optimal Quantum Phase Estimation
- Entangled Fock states for Robust Quantum Optical Metrology, Imaging, and Sensing
- All path-symmetric pure states achieve their maximal phase sensitivity in conventional two-path interferometry
- Quantum-inspired interferometry with chirped laser pulses
- Loss-Induced Limits to Phase Measurement Precision with Maximally Entangled States
- Local and Global Distinguishability in Quantum Interferometry
- Deterministic Super Resolution with Coherent States at the Shot Noise Limit
- Sub-Shot-Noise Quantum Optical Interferometry: A Comparison of Entangled State Performance within a Unified Measurement Scheme
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