Homodyne detection for pulse-by-pulse squeezing measurements
Abstract
Homodyne detection is a phase-sensitive measurement technique, essential for the characterization of continuous-variable (CV)-encoded quantum states of light. It is a key component to the implementation of CV quantum-information protocols and benefits from operating, by design, at room temperature. However, performing high-speed quantum information processing remains a major challenge, as conventional homodyne detectors often fail to sustain pulsed operation at high repetition rates due to electronic limitations. We present wideband homodyne detectors operating at near-infrared (NIR) and telecom wavelengths, with optimized performance at repetition rates up to 150 MHz. We demonstrate their performance by resolving the pulse-by-pulse structure of squeezed states of light at telecom wavelengths while preserving their spectral multimode properties.
Keywords
Cite
@article{arxiv.2511.04578,
title = {Homodyne detection for pulse-by-pulse squeezing measurements},
author = {Tiphaine Kouadou and Elie Gozlan and Loïc Garcia and David Polizzi and David Fainsin and Iris Paparelle and R. L. Rincón Celis and Bastien Oriot and Anthony Abi Aad and Peter Namdar and Ganaël Roland and Nicolas Treps and Bérengère Argence and Valentina Parigi},
journal= {arXiv preprint arXiv:2511.04578},
year = {2025}
}
Comments
9 pages, 10 figures