Microscopy with heralded Fock states
arXiv:2011.03056 · doi:10.1364/OE.486439
Abstract
We consider a microscopy setting where quantum light is used for illumination. Spontaneous parametric down conversion (SPDC) is used as a source of a heralded single photon, which is quantum light prepared in a Fock state. We present analytical formulas for the spatial mode tracking along with the heralded and non-heralded mode widths. The obtained analytical results are supported by numerical calculations and the following discussion taking into account realistic setup parameters such as finite-size optics and finite-size single-photon detectors. This allows us to observe that the diffraction limit can be approached with simultaneous alleviation of the photon loss leading to increased signal-to-noise ratio - a factor limiting practical applications of quantum light. Additionally, it is shown that the spatial resolution can be manipulated by carefully preparing the amplitude and phase of the spatial mode profile of the single photon at the input to the microscope objective. Here, the spatial entanglement of the biphoton wavefunction or adaptive optics can be applied for spatial mode shaping. Analytical dependencies between the incident and focused spatial mode profiles parameters are provided.
13 pages, 3 figures
References in corpus (6)
- Imaging high-dimensional spatial entanglement with a camera
- Introduction to the Transverse Spatial Correlations in Spontaneous Parametric Down-Conversion through the Biphoton Birth Zone
- High-performance source of spectrally pure, polarization entangled photon pairs based on hybrid integrated-bulk optics
- Reducing detection noise of a photon pair in a dispersive medium by controlling its spectral entanglement
- Entangled-Photon Coincidence Fluorescence Imaging
- Towards correcting atmospheric beam wander via pump beam control in a down conversion process