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Autori principali: Bortolotti, Nicola, Curceanu, Catalina, Diósi, Lajos, Manti, Simone, Piscicchia, Kristian
Natura: Preprint
Pubblicazione: 2025
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Accesso online:https://arxiv.org/abs/2504.06109
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author Bortolotti, Nicola
Curceanu, Catalina
Diósi, Lajos
Manti, Simone
Piscicchia, Kristian
author_facet Bortolotti, Nicola
Curceanu, Catalina
Diósi, Lajos
Manti, Simone
Piscicchia, Kristian
contents Models of spontaneous wavefunction collapse explain the quantum-to-classical transition without invoking the von Neumann measurement postulate. Prominent frameworks, such as the Diósi-Penrose (DP) and Continuous Spontaneous Localization (CSL) models, propose a continuous, spontaneous measurement of the mass density field of quantized matter. We show that this mechanism could link both models - not just DP - to fundamental uncertainties in Newtonian gravity. Despite their non-relativistic nature, these models suggest an induced uncertainty in the flow of time due to fluctuations in the Newtonian potential. We calculate the ultimate limit on time uncertainty and demonstrate that the resulting clock-time uncertainty remains negligible for all contemporary time-keeping devices, including atomic clocks.
format Preprint
id arxiv_https___arxiv_org_abs_2504_06109
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Fundamental Limits on Clock Precision from Spacetime Uncertainty in Quantum Collapse Models
Bortolotti, Nicola
Curceanu, Catalina
Diósi, Lajos
Manti, Simone
Piscicchia, Kristian
Quantum Physics
Models of spontaneous wavefunction collapse explain the quantum-to-classical transition without invoking the von Neumann measurement postulate. Prominent frameworks, such as the Diósi-Penrose (DP) and Continuous Spontaneous Localization (CSL) models, propose a continuous, spontaneous measurement of the mass density field of quantized matter. We show that this mechanism could link both models - not just DP - to fundamental uncertainties in Newtonian gravity. Despite their non-relativistic nature, these models suggest an induced uncertainty in the flow of time due to fluctuations in the Newtonian potential. We calculate the ultimate limit on time uncertainty and demonstrate that the resulting clock-time uncertainty remains negligible for all contemporary time-keeping devices, including atomic clocks.
title Fundamental Limits on Clock Precision from Spacetime Uncertainty in Quantum Collapse Models
topic Quantum Physics
url https://arxiv.org/abs/2504.06109