Measuring time means counting the occurrence of periodic phenomena. Over the past centuries a major effort was put to make stable and precise oscillators to be used as clock regulators. Here we consider a different class of clocks based on stochastic clicking processes. We provide a rigorous statistical framework to study the performances of such devices and apply our results to a single coherently driven two-level atom under photodetection as an extreme example of non-periodic clock. Quantum Jump MonteCarlo simulations and photon counting waiting time distribution will provide independent checks on the main results.Comment: 7 pages, 4 figure
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A previously constructed laser model with quantum (noncommuting) noise sources was shown to lead nea...
We propose a multimeasurement estimation protocol for Quantum Nondemolition (QND) measurements in a ...
In order to unitarily evolve a quantum system, an agent requires knowledge of time, a parameter whic...
We demonstrate a quantum clock, near zero temperature, driven in part by entropy reduction through m...
We discuss the emergence of non-stationarity in open quantum many-body systems. This leads us to the...
Clocks are among the most precise measurement devices ever built, but like anything else, they are b...
The dynamics of an unique type of clock mechanism known as grasshopper escapement is investigated wi...
A fundamental description of time can be consistent not only with the usual monotonic behavior but a...
Continuous clocks, i.e. the clocks that measure time in a continuous manner, are regarded as an esse...
Atomic clocks known as optical clocks are more accurate and stable than current timekeepers. Two qua...
In this paper we argue that the notion of time, whatever complicated and difficult to define as the ...
International audienceRecently, Chen et al. [Phys. Rev. A 84, 033835 (2011)] reported observation of...
Starting from a frequency diffusion process for a tagged photon which simulates relaxation to the Pl...
Optomechanical systems are rapidly becoming one of the most promising platforms for observing quantu...
We consider classical dynamics of a 1D system of $N$ particles bouncing on an oscillating mirror in ...
A previously constructed laser model with quantum (noncommuting) noise sources was shown to lead nea...
We propose a multimeasurement estimation protocol for Quantum Nondemolition (QND) measurements in a ...
In order to unitarily evolve a quantum system, an agent requires knowledge of time, a parameter whic...