Macroscopic photon counting beating the Poisson noise limit

Fuente: arXiv
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Main Authors: Schapeler, Timon, Schlue, Fabian, Mischke, Isabell, Stefszky, Michael, Brecht, Benjamin, Silberhorn, Christine, Bartley, Tim J.
Format: Preprint
Published: 2026
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_version_ 1866909004341444608
author Schapeler, Timon
Schlue, Fabian
Mischke, Isabell
Stefszky, Michael
Brecht, Benjamin
Silberhorn, Christine
Bartley, Tim J.
author_facet Schapeler, Timon
Schlue, Fabian
Mischke, Isabell
Stefszky, Michael
Brecht, Benjamin
Silberhorn, Christine
Bartley, Tim J.
contents Photon counting is a cornerstone of quantum optics. Here, we demonstrate precisely counting from 0 to over 9000 photons, beating the Poisson noise limit by at least $4.1~\mathrm{dB}$ across this range. We achieve sub-single-photon precision up to 276 photons per pulse. To do so, we multiplex eight intrinsically photon-number-resolving superconducting nanowire single-photon detectors across 128 temporal modes. We use a model-informed characterization of each of the 1024 detection bins, for optimal precision. We perform quantum detector tomography to reconstruct the positive operator valued measures (POVMs) of the complete device, which consists of $1.38\cdot10^8$ matrix elements. At the repetition rate of our experiment of $80~\mathrm{kHz}$, we can precisely count photons corresponding to an optical power of approximately $71~\mathrm{pW}$, bridging the gap from single-photon measurements to high-sensitivity optical power meters. A photon-number-resolving detector of this size, and the tools used to analyze it, will become increasingly important to characterize large quantum states, as well as tasks in precision metrology and optical power standards.
format Preprint
id arxiv_https___arxiv_org_abs_2604_27761
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Macroscopic photon counting beating the Poisson noise limit
Schapeler, Timon
Schlue, Fabian
Mischke, Isabell
Stefszky, Michael
Brecht, Benjamin
Silberhorn, Christine
Bartley, Tim J.
Quantum Physics
Instrumentation and Detectors
Photon counting is a cornerstone of quantum optics. Here, we demonstrate precisely counting from 0 to over 9000 photons, beating the Poisson noise limit by at least $4.1~\mathrm{dB}$ across this range. We achieve sub-single-photon precision up to 276 photons per pulse. To do so, we multiplex eight intrinsically photon-number-resolving superconducting nanowire single-photon detectors across 128 temporal modes. We use a model-informed characterization of each of the 1024 detection bins, for optimal precision. We perform quantum detector tomography to reconstruct the positive operator valued measures (POVMs) of the complete device, which consists of $1.38\cdot10^8$ matrix elements. At the repetition rate of our experiment of $80~\mathrm{kHz}$, we can precisely count photons corresponding to an optical power of approximately $71~\mathrm{pW}$, bridging the gap from single-photon measurements to high-sensitivity optical power meters. A photon-number-resolving detector of this size, and the tools used to analyze it, will become increasingly important to characterize large quantum states, as well as tasks in precision metrology and optical power standards.
title Macroscopic photon counting beating the Poisson noise limit
topic Quantum Physics
Instrumentation and Detectors
url https://arxiv.org/abs/2604.27761