Witnessing non-stationary and non-Markovian environments with a quantum sensor

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Hauptverfasser: Rosenberg, John W., Kuffer, Martín, Zohar, Inbar, Stöhr, Rainer, Denisenko, Andrej, Zwick, Analia, Álvarez, Gonzalo A., Finkler, Amit
Format: Preprint
Veröffentlicht: 2025
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author Rosenberg, John W.
Kuffer, Martín
Zohar, Inbar
Stöhr, Rainer
Denisenko, Andrej
Zwick, Analia
Álvarez, Gonzalo A.
Finkler, Amit
author_facet Rosenberg, John W.
Kuffer, Martín
Zohar, Inbar
Stöhr, Rainer
Denisenko, Andrej
Zwick, Analia
Álvarez, Gonzalo A.
Finkler, Amit
contents Quantum sensors offer exceptional sensitivity to nanoscale magnetic fluctuations, where non-stationary effects -- such as spin diffusion -- and non-Markovian dynamics arising from coupling to few environmental degrees of freedom play critical roles. Because fully reconstructing the microscopic structure of realistic spin baths is often infeasible, a practical challenge is to identify the dynamical features that are actually encoded in the sensor's decoherence signal. Here, we demonstrate how quantum sensors can operationally characterize the statistical nature of environmental noise, distinguishing between stationary and non-stationary behaviors, as well as Markovian and non-Markovian dynamics. Using nitrogen-vacancy (NV) centers in diamond as a platform, we develop a physical noise model that captures the essential dynamical features of realistic environments relevant to sensor observables -- independently of the microscopic bath details -- and provides analytical predictions for Ramsey decay across different regimes. These predictions are experimentally validated through controlled noise injection with tunable correlation properties. Our results showcase the capability of quantum sensors to isolate and identify key dynamical properties of complex environments, without requiring full microscopic bath reconstruction. This work clarifies the operational signatures of non-stationarity and non-Markovian behavior at the nanoscale and lays the foundation for strategies that mitigates decoherence while exploiting environmental dynamics for enhanced quantum sensing.
format Preprint
id arxiv_https___arxiv_org_abs_2501_05814
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Witnessing non-stationary and non-Markovian environments with a quantum sensor
Rosenberg, John W.
Kuffer, Martín
Zohar, Inbar
Stöhr, Rainer
Denisenko, Andrej
Zwick, Analia
Álvarez, Gonzalo A.
Finkler, Amit
Quantum Physics
Mesoscale and Nanoscale Physics
Chemical Physics
Quantum sensors offer exceptional sensitivity to nanoscale magnetic fluctuations, where non-stationary effects -- such as spin diffusion -- and non-Markovian dynamics arising from coupling to few environmental degrees of freedom play critical roles. Because fully reconstructing the microscopic structure of realistic spin baths is often infeasible, a practical challenge is to identify the dynamical features that are actually encoded in the sensor's decoherence signal. Here, we demonstrate how quantum sensors can operationally characterize the statistical nature of environmental noise, distinguishing between stationary and non-stationary behaviors, as well as Markovian and non-Markovian dynamics. Using nitrogen-vacancy (NV) centers in diamond as a platform, we develop a physical noise model that captures the essential dynamical features of realistic environments relevant to sensor observables -- independently of the microscopic bath details -- and provides analytical predictions for Ramsey decay across different regimes. These predictions are experimentally validated through controlled noise injection with tunable correlation properties. Our results showcase the capability of quantum sensors to isolate and identify key dynamical properties of complex environments, without requiring full microscopic bath reconstruction. This work clarifies the operational signatures of non-stationarity and non-Markovian behavior at the nanoscale and lays the foundation for strategies that mitigates decoherence while exploiting environmental dynamics for enhanced quantum sensing.
title Witnessing non-stationary and non-Markovian environments with a quantum sensor
topic Quantum Physics
Mesoscale and Nanoscale Physics
Chemical Physics
url https://arxiv.org/abs/2501.05814