Distortions produced in optical homodyne tomography
arXiv:2204.05063 · doi:10.1103/PhysRevA.106.023713
Abstract
An analysis of the homodyne tomography process that is often used to determine the Wigner functions of quantum optical states is performed to consider the effects of the spatiotemporal degrees of freedom. The homodyne tomography process removes those parts of the input state that are not associated with the mode of the local oscillator by tracing out those degrees of freedom. Using a functional approach to incorporate all the spatiotemporal degrees of freedom, we find that this reduction in the degrees of freedom introduces distortions in the observed Wigner function. The analysis also shows how the homodyne tomography process introduces a resolution that depends on the strength of the local oscillator. As examples, we consider coherent states, Fock states and squeezed vacuum states.
15 pages, 4 figures, several improvements and corrections, comments welcome
References in corpus (10)
- Detection of 15 dB Squeezed States of Light and their Application for the Absolute Calibration of Photoelectric Quantum Efficiency
- Experimental nonclassicality of single-photon-added thermal light states
- Quantum homodyne tomography of a two-photon Fock state
- Tomographic reconstruction of the single-photon Fock state by high-frequency homodyne detection
- Certification of non-Gaussian states with operational measurements
- Conditional non-Gaussian quantum state preparation
- Parametric down-conversion beyond the semi-classical approximation
- Spatiotemproal effects on squeezing measurements
- Toolbox for non-classical state calculations
- Stimulated parametric down-conversion for spatiotemporal metrology