Extracting information from a superradiant burst using simple measurements

Fuente: arXiv
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Autores principales: Belliardo, Federico, Chu, Anjun, Koppenhöfer, Martin, Clerk, Aashish A.
Formato: Preprint
Publicado: 2026
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author Belliardo, Federico
Chu, Anjun
Koppenhöfer, Martin
Clerk, Aashish A.
author_facet Belliardo, Federico
Chu, Anjun
Koppenhöfer, Martin
Clerk, Aashish A.
contents It is well known that superradiant decay of an ensemble of $N$ spins generates a complex non-classical state of light. Here, we consider the information content of a superradiant burst of photons: how is information encoded in the initial spin state distributed among the emitted photons, and can it be extracted using simple measurements? Despite the complexity of the photonic burst state, we show that a simple homodyne measurement combined with an optimized filter and linear estimator recovers the $N$-scaling of the quantum Fisher information of the initial spin state (including cases exhibiting $N^2$ Heisenberg scaling). Even more surprising, the temporal mode with optimal information content contains a vanishing fraction of the total emitted photons in the large-$N$ limit, suggesting an effective compressing of information. Our results and setup represent a new way to perform cavity based readout of solid-state spin ensembles that allows one to utilize resonant spin-photon interactions.
format Preprint
id arxiv_https___arxiv_org_abs_2603_13130
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Extracting information from a superradiant burst using simple measurements
Belliardo, Federico
Chu, Anjun
Koppenhöfer, Martin
Clerk, Aashish A.
Quantum Physics
It is well known that superradiant decay of an ensemble of $N$ spins generates a complex non-classical state of light. Here, we consider the information content of a superradiant burst of photons: how is information encoded in the initial spin state distributed among the emitted photons, and can it be extracted using simple measurements? Despite the complexity of the photonic burst state, we show that a simple homodyne measurement combined with an optimized filter and linear estimator recovers the $N$-scaling of the quantum Fisher information of the initial spin state (including cases exhibiting $N^2$ Heisenberg scaling). Even more surprising, the temporal mode with optimal information content contains a vanishing fraction of the total emitted photons in the large-$N$ limit, suggesting an effective compressing of information. Our results and setup represent a new way to perform cavity based readout of solid-state spin ensembles that allows one to utilize resonant spin-photon interactions.
title Extracting information from a superradiant burst using simple measurements
topic Quantum Physics
url https://arxiv.org/abs/2603.13130