arXiv · 1401.1288
Accelerating the Averaging Rate of Atomic Ensemble Clock Stability using Atomic Phase Lock
Abstract
We experimentally demonstrated that the stability of an atomic clock improves at fastest rate $τ^{-1}$ (where $τ$ is the averaging time) when the phase of a local oscillator is genuinely compared to the continuous phase of many atoms in a single trap (atomic phase lock). For this demonstration, we developed a simple method that repeatedly monitors the atomic phase while retaining its coherence by observing only a portion of the whole ion cloud. Using this new method, we measured the continuous phase over 3 measurement cycles, and thereby improved the stability scaling from $τ^{-1/2}$ to $τ^{-1}$ during the 3 measurement cycles. %Compared with the standard method that initialize phase during each measurement cycle, the long term stability was improved by a factor of $\sqrt{n_{cp}}$ (where $n_{cp}$ is the number of continuous phase measurements). This simple method provides a path by which atomic clocks can approach a quantum projection noise limit, even when the measurement noise is dominated by the technical noise.
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Nobuyasu Shiga, Michiaki Mizuno, Kohta Kido, Piyaphat Phoonthong, Kunihiro Okada. 2014-06-27. Accelerating the Averaging Rate of Atomic Ensemble Clock Stability using Atomic Phase Lock. https://doi.org/10.1088/1367-2630%2F16%2F7%2F073029
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