Demonstration of the mass-producible feature of a Cs vapor microcell technology for miniature atomic clocks
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Titre | Demonstration of the mass-producible feature of a Cs vapor microcell technology for miniature atomic clocks |
Type de publication | Journal Article |
Year of Publication | 2018 |
Auteurs | Vicarini R., Maurice V, M. Hafiz A, Rutkowski J., Gorecki C., Passilly N., Ribetto L., Gaff V, Volant V., Galliou S., Boudot R. |
Journal | SENSORS AND ACTUATORS A-PHYSICAL |
Volume | 280 |
Pagination | 99-106 |
Date Published | SEP 1 |
Type of Article | Article |
ISSN | 0924-4247 |
Mots-clés | Alkaline vapor cells, Atomic physics, coherent population trapping |
Résumé | We report on the characterization of Cs vapor microcells based on pill dispensers and fabricated in a MEMS foundry according to a process compatible with mass-production. More than three quarters of cells from 6-inch wafers are successfully filled with Cs vapor. Various cells of a given wafer have been characterized using coherent population trapping (CPT) spectroscopy, demonstrating similar buffer gas (Ne) pressure with a standard deviation of about 2.5% and CPT resonances with similar linewidth and contrast properties. In addition, frequency drifts mainly attributed to cell inner atmosphere variations have been investigated onto several cells over 250-500 h measurements. The corresponding contribution at 1 day averaging time to a clock fractional frequency stability is estimated to be about 10(-11) or lower. In a last section, the fractional frequency stability of a clock prototype using one fabricated Cs-Ne microcell is measured to be 2.5 x 10(-11) tau(-1/2) up to 200 s averaging time and better than 2 x 10(-11) at 10(5) s. The clock frequency stability is mainly limited at short-term by the frequency-to-amplitude (FM-AM) noise conversion process and the laser amplitude (AM) noise. The mid-term stability is mainly affected by temperature-induced light shift effects. These performances tend to demonstrate that this vapor cell technology, compatible with mass-production, is suitable for miniature quantum clocks or sensors. (C) 2018 Elsevier B.V. All rights reserved. |
DOI | 10.1016/j.sna.2018.07.032 |