Momentum-entangled two-photon interference for quantum-limited transverse-displacement estimation
arXiv:2408.12452 · doi:10.1103/PhysRevA.111.032605
Abstract
We propose a scheme achieving the ultimate quantum precision for the estimation of the transverse displacement between two interfering photons. Such a transverse displacement could be caused, for example, by the refracting properties of the propagation medium or by the orientation of a system of mirrors. By performing transverse-momentum sampling interference between polarization-entangled pairs of photons that propagate with different momenta, we show that it is possible to perform transverse-displacement estimation with a precision that increases with the difference of the transverse momenta of the photons. We show that the precision achieved with our scheme is independent of the value of the displacement, useful when tracking a variable displacement. Moreover, only for small displacements, we show that the estimation can be performed without the need for transverse-momentum-resolving detectors. More fundamentally, we demonstrate that it is the quantum interference arising from two-photon entanglement in the transverse momenta at the very heart of the foreseen quantum-limited sensitivity in the spatial domain.
12 pages, 4 figures
References in corpus (19)
- Quantum metrology
- Quantum Beat of Two Single Photons
- Two-photon interference: the Hong-Ou-Mandel effect
- Attosecond-Resolution Hong-Ou-Mandel Interferometry
- Time-Resolved Two-Photon Quantum Interference
- Hong-Ou-Mandel interferometry on a biphoton beat note
- Quantum optical coherence tomography of a biological sample
- Polarization-entangled photon-pair source obtained via type-II non-collinear SPDC process with PPKTP crystal
- Spectrally-resolved Hong-Ou-Mandel interferometry for Quantum-Optical Coherence Tomography
- Imaging spatio-temporal Hong-Ou-Mandel interference of bi-photon state of extremely high Schmidt number
- Tracking the polarisation state of light via Hong-Ou-Mandel interferometry
- Parameter estimation of time and frequency shifts with generalized HOM interferometry
- Ultimate quantum sensitivity in the estimation of the delay between two interfering photons through frequency-resolving sampling
- Beyond coincidence: using all the data in Hong-Ou-Mandel interferometry
- Fluorescence Lifetime Hong-Ou-Mandel Sensing
- Estimation with ultimate quantum precision of the transverse displacement between two photons via two-photon interference sampling measurements
- Tunable beam displacer
- Multi-parameter estimation of the state of two interfering photonic qubits
- Exact solutions for vector phase matching conditions in nonlinear uniaxial crystals