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Exponential scaling of clock stability with atom number
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In trapped-atom clocks, the primary source of decoherence is often the phase noise of the oscillator. For this case, we derive theoretical performance gains by combining several atomic ensembles. For example, M ensembles of N atoms can be combined with a variety of probe periods, to reduce the frequency variance to M 2^-M times that of standard Ramsey clocks. A similar exponential improvement is possible if the atomic phases of some of the ensembles evolve at reduced frequencies. These ensembles may be constructed from atoms or molecules with lower-frequency transitions, or generated by dynamical decoupling. The ensembles with reduced frequency or probe period are responsible only for counting the integer number of 2 pi phase wraps, and do not affect the clock's systematic errors. Quantum phase measurement with Gaussian initial states allows for smaller ensemble sizes than Ramsey spectroscopy.
Forward citations
Cited by 2 Pith papers
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Extending the dynamic range in quantum frequency estimation with sequential weak measurements
Sequential weak measurements followed by a final projective measurement extend the dynamic range of coherent-spin-state frequency estimation and asymptotically saturate the noiseless quantum Fisher information bound.
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Enhancing Noisy Quantum Sensing by GHZ State Partitioning
Splitting a noisy GHZ sensor array into smaller independent GHZ sub-ensembles, with optimal sub-ensemble size set by the inverse error rate, maximizes the quantum Fisher information.
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