Position-correlated biphoton wavefront sensing for quantum adaptive imaging
arXiv:2504.21573 · doi:10.1038/s41377-025-02024-4
Abstract
Quantum imaging with spatially entangled photons offers advantages such as enhanced spatial resolution, robustness against noise, and counter-intuitive phenomena, while a biphoton spatial aberration generally degrades its performance. Biphoton aberration correction has been achieved by using classical beams to detect the aberration source or scanning the correction phase on biphotons if the source is unreachable. Here, a new method named position-correlated biphoton Shack-Hartmann wavefront sensing is introduced, where the phase pattern added on photon pairs with a strong position correlation is reconstructed from their position centroid distribution at the back focal plane of a microlens array. Experimentally, biphoton phase measurement and adaptive imaging against the disturbance of a plastic film are demonstrated. This single-shot method is a more direct and efficient approach toward quantum adaptive optics, suitable for integration into quantum microscopy, remote imaging, and communication.
7 pages, 4 figures for the main text; 6 pages, 7 figures for the supplementary information
References in corpus (25)
- Quantum Imaging with Undetected Photons
- Imaging with quantum states of light
- Spatial correlations in parametric down-conversion
- Imaging Through Noise With Quantum Illumination
- Advances in quantum imaging
- Introduction to the Transverse Spatial Correlations in Spontaneous Parametric Down-Conversion through the Biphoton Birth Zone
- Quantum Imaging beyond the Diffraction Limit by Optical Centroid Measurements
- Entanglement-Based Quantum Information Technology
- Heisenberg Scaling Quantum Microscopy: Experiment and Theory
- General model of photon-pair detection with an image sensor
- Wavefront sensing reveals optical coherence
- Adaptive Quantum Optics with Spatially Entangled Photon Pairs
- Correlation plenoptic imaging
- Pixel super-resolution using spatially-entangled photon pairs
- Real-time shaping of entangled photons by classical control and feedback
- Quantifying high-dimensional spatial entanglement with a single-photon-sensitive time-stamping camera
- Optimizing the signal-to-noise ratio of biphoton distribution measurements
- Light Field Ghost Imaging
- Propagation-induced entanglement revival
- Quantum reconstruction of the mutual coherence function
- Detecting momentum weak value: Shack-Hartmann versus a weak measurement wavefront sensor
- Characterizing Biphoton Spatial Wave Function Dynamics with Quantum Wavefront Sensing
- Shaping entangled photons through thick scattering media using an advanced wave beacon
- Theory of the monochromatic advanced-wave picture and applications in biphoton optics
- Reconstructing the multiphoton spatial wave function with coincidence wavefront sensing