A qutrit prepared in the central state of a Wigner-Majorana spin-1 manifold yields Ramsey fringes cos^2(Δτ), doubling the central-fringe frequency and slope of a qubit at fixed interrogation time.
The ultimate bounds to precision of atomic clock frequency measurement techniques
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abstract
We investigate the ultimate quantum limits to the achievable uncertainty in the estimation of the transition frequency between two atomic levels. We focus on Rabi, Ramsey, and coherent population trapping (CPT) techniques, which are widely employed in experiments. We prove that in the Rabi and Ramsey schemes measuring the atomic population allows one to reach the minimum uncertainty, but, for the CPT setup, a measurement involving the coherences between the levels results in a further improvement of the estimation. As a figure of merit, we consider the Fisher information of the population measurement and compare its value to the quantum Fisher information, corresponding to the maximum precision, optimized over all the possible feasible measurements.
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Ramsey Interferometry in Wigner-Majorana Qudits
A qutrit prepared in the central state of a Wigner-Majorana spin-1 manifold yields Ramsey fringes cos^2(Δτ), doubling the central-fringe frequency and slope of a qubit at fixed interrogation time.