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Autori principali: Aloy, Albert, Fadel, Matteo, Galley, Thomas D., Jones, Caroline L., Mueller, Markus P.
Natura: Preprint
Pubblicazione: 2024
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Accesso online:https://arxiv.org/abs/2411.13421
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author Aloy, Albert
Fadel, Matteo
Galley, Thomas D.
Jones, Caroline L.
Mueller, Markus P.
author_facet Aloy, Albert
Fadel, Matteo
Galley, Thomas D.
Jones, Caroline L.
Mueller, Markus P.
contents Characterizing the nonclassicality of quantum systems under minimal assumptions is an important challenge for quantum foundations and technology. Here we introduce a theory-independent method of process tomography and perform it on a superconducting qubit. We demonstrate its decoherence without assuming quantum theory or trusting the devices by modelling the system as a general probabilistic theory. We show that the superconducting system is initially well-described as a quantum bit, but that its realized state space contracts over time, which in quantum terminology indicates its loss of coherence. The system is initially nonclassical in the sense of generalized contextuality: it does not admit of a hidden-variable model where statistically indistinguishable preparations are represented by identical hidden-variable distributions. In finite time, the system becomes noncontextual and hence loses its nonclassicality. Moreover, we demonstrate in a theory-independent way that the system undergoes non-Markovian evolution at late times. Our results extend theory-independent tomography to time-evolving systems, and show how important dynamical physical phenomena can be experimentally monitored without assuming quantum theory.
format Preprint
id arxiv_https___arxiv_org_abs_2411_13421
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Theory-independent monitoring of the decoherence of a superconducting qubit with generalized contextuality
Aloy, Albert
Fadel, Matteo
Galley, Thomas D.
Jones, Caroline L.
Mueller, Markus P.
Quantum Physics
Characterizing the nonclassicality of quantum systems under minimal assumptions is an important challenge for quantum foundations and technology. Here we introduce a theory-independent method of process tomography and perform it on a superconducting qubit. We demonstrate its decoherence without assuming quantum theory or trusting the devices by modelling the system as a general probabilistic theory. We show that the superconducting system is initially well-described as a quantum bit, but that its realized state space contracts over time, which in quantum terminology indicates its loss of coherence. The system is initially nonclassical in the sense of generalized contextuality: it does not admit of a hidden-variable model where statistically indistinguishable preparations are represented by identical hidden-variable distributions. In finite time, the system becomes noncontextual and hence loses its nonclassicality. Moreover, we demonstrate in a theory-independent way that the system undergoes non-Markovian evolution at late times. Our results extend theory-independent tomography to time-evolving systems, and show how important dynamical physical phenomena can be experimentally monitored without assuming quantum theory.
title Theory-independent monitoring of the decoherence of a superconducting qubit with generalized contextuality
topic Quantum Physics
url https://arxiv.org/abs/2411.13421