A chip-scale atomic beam clock
arXiv:2303.11458 · doi:10.1038/s41467-023-39166-1
Abstract
Atomic beams are a longstanding technology for atom-based sensors and clocks with widespread use in commercial frequency standards. Here, we report the demonstration a chip-scale microwave atomic beam clock using coherent population trapping (CPT) interrogation in a passively pumped atomic beam device. The beam device consists of a hermetically sealed vacuum cell fabricated from an anodically bonded stack of glass and Si wafers. Atomic beams are created using a lithographically defined microcapillary array connected to a Rb reservoir1 and propagate in a 15 mm long drift cavity. We present a detailed characterization of the atomic beam performance (total Rb flux at 363 K device temperature) and of the vacuum environment in the device (pressure < 1 Pa), which is sustained using getter materials which pump residual gases and Rb vapor. A chip-scale beam clock is realized using Ramsey CPT spectroscopy of the 87Rb ground state hyperfine transition over a 10 mm Ramsey distance in the atomic beam device. The prototype atomic beam clock demonstrates a fractional frequency stability of for integration times from 1 s to 250 s, limited by detection noise. Optimized atomic beam clocks based on this approach may exceed the long-term stability of existing chip-scale clocks, and leading long-term systematics are predicted to limit the ultimate fractional frequency stability below .
22 pages, 4 figures
References in corpus (5)
- Invited Review: Micro-fabricated components for cold atom sensors
- A compact and efficient strontium oven for laser-cooling experiments
- Enhanced observation time of magneto-optical traps using micro-machined non-evaporable getter pumps
- Advanced light-shift compensation protocol in a continuous-wave microcell atomic clock
- A magneto-optic trap using a reversible, solid-state alkali-metal source
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- Addition to the dynamic Stark shift of the coherent population trapping resonance