Response of a classical mesoscopic oscillator to a two-level quantum system

Fuente: arXiv
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Autores principales: Sobrero, Felipe, Abrahão, Luca, Guerreiro, Thiago, Paraguassú, Pedro V.
Formato: Preprint
Publicado: 2025
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author Sobrero, Felipe
Abrahão, Luca
Guerreiro, Thiago
Paraguassú, Pedro V.
author_facet Sobrero, Felipe
Abrahão, Luca
Guerreiro, Thiago
Paraguassú, Pedro V.
contents We investigate the dynamics of a classical mechanical oscillator coupled to the simplest quantum system, a single qubit. Using the Feynman-Vernon influence functional formalism, we show that the qubit's influence manifests as both deterministic and stochastic forces on the oscillator. These forces are highly dependent on the qubit's initial quantum state, imprinting unique measurable signatures onto the oscillator's response. The present results provide a direct pathway to quantum state reconstruction through classical noise spectroscopy. By employing the Fisher Information Matrix, we quantify the efficacy of estimating the initial qubit state from the continuous classical record, revealing a fundamental temporal asymmetry between population and phase estimation. This framework has potential applications to mesoscopic optomechanical experiments, quantum metrology, and tabletop tests of the quantum nature of gravity.
format Preprint
id arxiv_https___arxiv_org_abs_2509_04216
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Response of a classical mesoscopic oscillator to a two-level quantum system
Sobrero, Felipe
Abrahão, Luca
Guerreiro, Thiago
Paraguassú, Pedro V.
Quantum Physics
Statistical Mechanics
We investigate the dynamics of a classical mechanical oscillator coupled to the simplest quantum system, a single qubit. Using the Feynman-Vernon influence functional formalism, we show that the qubit's influence manifests as both deterministic and stochastic forces on the oscillator. These forces are highly dependent on the qubit's initial quantum state, imprinting unique measurable signatures onto the oscillator's response. The present results provide a direct pathway to quantum state reconstruction through classical noise spectroscopy. By employing the Fisher Information Matrix, we quantify the efficacy of estimating the initial qubit state from the continuous classical record, revealing a fundamental temporal asymmetry between population and phase estimation. This framework has potential applications to mesoscopic optomechanical experiments, quantum metrology, and tabletop tests of the quantum nature of gravity.
title Response of a classical mesoscopic oscillator to a two-level quantum system
topic Quantum Physics
Statistical Mechanics
url https://arxiv.org/abs/2509.04216