The spatial resolution of an imaging apparatus is limited by the Rayleigh diffraction bound, a consequence of the imager's finite spatial extent. We show some N-photon strategies that permit resolution of details that are smaller than this bound, attaining either a 1/N^{1/2} enhancement (standard quantum limit) or a 1/N enhancement (Heisenberg-like scaling) over standard techniques. In the incoherent imaging regime, the methods presented are loss resistant, since classical light sources suffice. Our results may be of importance in many applications: microscopy, telescopy, lithography, metrology, etc
We propose a nonlinear imaging scheme with undetected photons that overcomes the diffraction limit b...
Quantum imaging with undetected photons relies on the principle of induced coherence without induced...
We investigate analytically and numerically the role of quantum fluctuations in reconstruction of op...
The spatial resolution of an imaging apparatus is limited by the Rayleigh diffraction bound, a conse...
The spatial resolution of an imaging apparatus is limited by the Rayleigh diffraction bound, a conse...
Superresolution imaging provides insight into physical systems that are smaller or more distant than...
The Rayleigh diffraction bound sets the minimum separation for two point objects to be distinguishab...
I propose a quantum imaging method that can beat the Rayleigh-Abbe diffraction limit and achieve de ...
We show how we can obtain improved resolution when imaging an object by filtering high-resolution qu...
The optical diffraction limit imposes a bound on imaging resolution in classical optics. Over the la...
We determine the ultimate potential of quantum imaging for boosting the resolution of a far-field, d...
Using multiphoton entangled states, we demonstrate improving spatial imaging resolution beyond the R...
We consider passive imaging tasks involving discrimination between known candidate objects and inves...
We demonstrate resolution below an imaging system's Rayleigh bound using an arbitrary object-coverin...
We derive the quantum limit for discriminating between M ≥ 2 incoherent, diffraction-limited objects...
We propose a nonlinear imaging scheme with undetected photons that overcomes the diffraction limit b...
Quantum imaging with undetected photons relies on the principle of induced coherence without induced...
We investigate analytically and numerically the role of quantum fluctuations in reconstruction of op...
The spatial resolution of an imaging apparatus is limited by the Rayleigh diffraction bound, a conse...
The spatial resolution of an imaging apparatus is limited by the Rayleigh diffraction bound, a conse...
Superresolution imaging provides insight into physical systems that are smaller or more distant than...
The Rayleigh diffraction bound sets the minimum separation for two point objects to be distinguishab...
I propose a quantum imaging method that can beat the Rayleigh-Abbe diffraction limit and achieve de ...
We show how we can obtain improved resolution when imaging an object by filtering high-resolution qu...
The optical diffraction limit imposes a bound on imaging resolution in classical optics. Over the la...
We determine the ultimate potential of quantum imaging for boosting the resolution of a far-field, d...
Using multiphoton entangled states, we demonstrate improving spatial imaging resolution beyond the R...
We consider passive imaging tasks involving discrimination between known candidate objects and inves...
We demonstrate resolution below an imaging system's Rayleigh bound using an arbitrary object-coverin...
We derive the quantum limit for discriminating between M ≥ 2 incoherent, diffraction-limited objects...
We propose a nonlinear imaging scheme with undetected photons that overcomes the diffraction limit b...
Quantum imaging with undetected photons relies on the principle of induced coherence without induced...
We investigate analytically and numerically the role of quantum fluctuations in reconstruction of op...