Scalable Spatial Super-Resolution using Entangled Photons
arXiv:1312.2012 · doi:10.1103/PhysRevLett.112.223602
Abstract
N00N states -- maximally path-entangled states of N photons -- exhibit spatial interference patterns sharper than any classical interference pattern. This is known as super-resolution. However, even with perfectly efficient number-resolving detectors, the detection efficiency of all previously demonstrated methods to measure such interference decreases exponentially with the number of photons in the N00N state, often leading to the conclusion that N00N states are unsuitable for spatial measurements. Here, we create spatial super-resolution fringes with two-, three-, and four-photon N00N states, and demonstrate a scalable implementation of the so-called ``optical centroid measurement'' which provides an in-principle perfect detection efficiency. Moreover, we compare the N00N-state interference to the corresponding classical super-resolution interference. Although both provide the same increase in spatial frequency, the visibility of the classical fringes decreases exponentially with the number of detected photons, while the visibility of our experimentally measured N00N-state super-resolution fringes remains approximately constant with N. Our implementation of the optical centroid measurement is a scalable method to measure high photon-number quantum interference, an essential step forward for quantum-enhanced measurements, overcoming what was believed to be a fundamental challenge to quantum metrology.
References in corpus (4)
- Beating the Standard Quantum Limit with Four Entangled Photons
- Quantum Imaging beyond the Diffraction Limit by Optical Centroid Measurements
- High photon number path entanglement in the interference of spontaneously downconverted photon pairs with coherent laser light
- On the Relationship between Resolution Enhancement and Multiphoton Absorption Rate in Quantum Lithography
Cited by in corpus (50)
- Advances in Photonic Quantum Sensing
- Quantum Theory of Superresolution for Two Incoherent Optical Point Sources
- Imaging with quantum states of light
- Real applications of quantum imaging
- Attosecond-Resolution Hong-Ou-Mandel Interferometry
- Quantum optical technologies for metrology, sensing and imaging
- Beating Rayleigh's Curse by Imaging Using Phase Information
- Entangled Photon-Pair Sources based on three-wave mixing in bulk crystals
- Linear Optical Quantum Metrology with Single Photons: Exploiting Spontaneously Generated Entanglement to Beat the Shot-Noise Limit
- Hologram of a Single Photon
- Setting bounds on two-photon absorption cross-sections in common fluorophores with entangled photon pair excitation
- Beating the Rayleigh Limit Using Two-Photon Interference
- Super-Resolution Quantum Imaging at the Heisenberg Limit
- Entanglement-Based Quantum Information Technology
- Experimental Preparation of High NOON States for Phonons
- Quantum-limited estimation of the axial separation of two incoherent point sources
- Coherent absorption of N00N states
- Quantum limits to optical point-source localization
- Observation of localized multi-spatial-mode quadrature squeezing in four-wave mixing
- Unconditional and robust quantum metrological advantage beyond NOON states
- Quantum metrology beyond Heisenberg limit with entangled matter wave solitons
- Mode engineering for realistic quantum-enhanced interferometry
- Shaping field correlations with quantum antennas
- Entangled coherent states by mixing squeezed vacuum and coherent light
- Optimal Gaussian Metrology for Generic Multimode Interferometric Circuit
- Effect of dispersion on indistinguishability between single-photon wave-packets
- What is superresolution microscopy?
- Confocal super-resolution microscopy based on a spatial mode sorter
- Noise Resistant Phase Imaging with Intensity Correlation
- Non-asymptotic Heisenberg scaling: experimental metrology for a wide resources range
- High-speed imaging of spatiotemporal correlations in Hong-Ou-Mandel interference
- Super-resolution Optical Fluctuation Imaging -- fundamental estimation theory perspective
- Enhanced Photonic Maxwell's Demon with Correlated Baths
- On the Optimal Choice of Spin-Squeezed States for Detecting and Characterizing a Quantum Process
- Detection of non-classical space-time correlations with a novel type of single-photon camera
- Photonic quantum metrology with variational quantum optical non-linearities
- Multiphoton Quantum Imaging using Natural Light
- Light, the universe, and everything -- 12 Herculean tasks for quantum cowboys and black diamond skiers
- Lost photon enhances superresolution
- Interferometric sensing of the tilt angle of a Gaussian beam
- Quantitative phase gradient microscopy with spatially entangled photons
- Analytical bounds for non-asymptotic asymmetric state discrimination
- Classical reconstruction of interference patterns of position-wavevector-entangled photon pairs by time-reversal method
- Scalable Generation of Multi-mode NOON States for Quantum Multiple-phase Estimation
- Precisely resolve energy-time entanglement by dual channel Fabry-Perot interferometry
- Quantum metrology and its application in biology
- Direct Generation and Detection of Correlated Photons with 3.2 um Wavelength Spacing
- Testing Single Photon Entanglement using Self-Referential Measurements
- Controlling and measuring a superposition of position and momentum
- Simulating and Optimising Quantum Thermometry Using Single Photons