A spacetime-covariant approach to inertial and accelerated quantum clocks in first-quantization
Eduardo A. B. Oliveira, Andre G. S. Landulfo

TL;DR
This paper develops a covariant formalism for quantum clocks in first quantization, enabling analysis of accelerated and inertial clocks, and demonstrates quantum fluctuations in time dilation effects.
Contribution
It introduces a spacetime-covariant approach to describe quantum clocks, including accelerated ones, maintaining unitarity and explicit covariance in their evolution.
Findings
Conditional probabilities match classical time dilation expectations.
Quantum fluctuations around classical peaks are characterized as Gaussian or modulated Gaussians.
The formalism applies to inertial and accelerated clocks, showing coherence effects.
Abstract
It is expected that a quantum theory of gravity will radically alter our current notion of spacetime geometry. However, contrary to what was commonly assumed for many decades, quantum gravity effects could manifest in scales much larger than the Planck scale, provided that there is enough coherence in the superposition of geometries. Quantum clocks, i.e. quantum mechanical systems whose internal dynamics can keep track of proper time lapses, are a very promising tool for probing such low-energy quantum gravity effects. In this work, we contribute to this subject by proposing a spacetime-covariant formalism to describe clocks in first quantization. In particular, we account for the possibility of dynamically accelerated clocks via suitable couplings with external fields. We find that a particular decomposition of the (quadratic) clock Hamiltonian into positive- and negative-mass sectors,…
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