Quantifying classical and quantum bounds for resolving closely spaced, non-interacting, simultaneously emitting dipole sources in optical microscopy
arXiv:2512.10889 · doi:10.1063/5.0316287
Abstract
Recent theoretical and experimental work has shown that the quantum Fisher information associated with estimating the separation between two optical point sources remains finite at small separations, effectively opening new routes to super-resolution imaging of simultaneously emitting sources. Most studies to date, however, implicitly invoke the scalar approximation, which is not appropriate in the context of high-numerical-aperture microscopy. Utilizing parameter estimation theory, here we consider the estimation of separation between two closely spaced dipole emitters, a commonly employed model for single-molecule optical beacons. We consider two limiting cases: one in which the orientations of the emitters are fixed and equal, and another in which both dipoles freely sample all of orientation space over the course of the measurement. We quantify precision limits using quantum and classical variants of the Fisher information and Cramér-Rao bound. In all cases, the vectorial nature of the emission complicates the analyses, but with appropriate filtering of the collected light in the azimuthal-radial polarization basis, a previously proposed scheme to saturate the quantum Fisher information via image inversion interferometry can be salvaged.
30 pages, 11 figures
References in corpus (31)
- Nanometer resolution imaging and tracking of fluorescent molecules with minimal photon fluxes
- Quantum Theory of Superresolution for Two Incoherent Optical Point Sources
- Far-field Superresolution of Thermal Electromagnetic Sources at the Quantum Limit
- Beating Rayleigh's Curse by Imaging Using Phase Information
- Multiparameter Quantum Metrology of Incoherent Point Sources: Towards Realistic Superresolution
- Ultimate precision bound of quantum and sub-wavelength imaging
- A modern description of Rayleigh's criterion
- Resolving starlight: a quantum perspective
- Beating the Rayleigh Limit Using Two-Photon Interference
- Subdiffraction incoherent optical imaging via spatial-mode demultiplexing
- Quantum limit for two-dimensional resolution of two incoherent optical point sources
- Quantum-limited time-frequency estimation through mode-selective photon measurement
- Interferometric superlocalization of two incoherent optical point sources
- The quantum limit to incoherent imaging is achieved by linear interferometry
- Quantum Nonlocality in Weak-Thermal-Light Interferometry
- Quantum limits to optical point-source localization
- Fisher information for far-field linear optical superresolution via homodyne or heterodyne detection in a higher-order local oscillator mode
- Optimal measurements for quantum spatial superresolution
- Approaching Quantum Limited Super-Resolution Imaging without Prior Knowledge of the Object Location
- On superresolution imaging as a multiparameter estimation problem
- Subdiffraction incoherent optical imaging via spatial-mode demultiplexing: semiclassical treatment
- Interferometry with Photon-Subtracted Thermal Light
- Quantum Fisher Information with Coherence
- Quantum limits of localisation microscopy
- Comment on "Resurgence of Rayleigh's curse in the presence of partial coherence"
- Fundamental Limits on Measuring the Rotational Constraint of Single Molecules using Fluorescence Microscopy
- Single-molecule orientation localization microscopy I: fundamental limits
- Realistic sub-Rayleigh imaging with phase-sensitive measurements
- Quantum limited super-resolution of an unequal-brightness source pair in three dimensions
- The Role of Quantum Decoherence in FRET
- Resolving the Orientations of and Angular Separation between a Pair of Dipole Emitters