Controlling light shifts in chip-scale atomic beam clocks
Alexander Staron, Mingwu Lu, Ruwan Senaratne, Travis Autry, Susan Schima, John Kitching, William McGehee
Abstract
Chip-scale atomic beam clocks are being investigated to extend the range of clock stability achievable in low-power timing applications. Here, we demonstrate a centimeter-scale, Ramsey coherent population trapping (CPT) clock based on a microfabricated Cs atomic beam device and investigate the interplay between light shifts and Doppler shifts that determines its leading clock systematics. We show that these shifts exhibit competing dependencies on CPT light parameters, leading to ``doubly-insensitive" operating points where the clock frequency is simultaneously insensitive to laser frequency and power. We further demonstrate a method for controlling key clock shifts using spectroscopic signatures from the atomic beam that is compatible with fully-integrated operation. The clock achieves a fractional frequency stability of 2 × 10-10 at 1~s and sub-μs drift over nearly 17~hours, with leading CPT light systematics controlled below the 10-12 level.
Create a lesson
Related papers
Cancellation of D2 line transitions of alkali-metal atoms by magnetic-field values
Artur Aleksanyan, Susanna Petrosyan, Emil Gazazyan
Estimating the ground-state hyperfine shifts of group-1 atoms due to long-range collisions, static electric fields, and nearby surfaces
B. H. McGuyer, K. Choksi, N. VonHeeder et al.
Photoelectron interferometry with spectrally shaped polychromatic infrared pulses
E. A. Boati, G. Arvidsson, M. Ammitzböll et al.
Coherently Enhanced Cherenkov Radiation by Highly Relativistic and Ultra-Compact Electron Beams
S. Kim, C. Müller, A. B. Voitkiv
Quantified absorption of laser light by silver atoms in a hollow-cathode lamp
Matthew P. Wilde, Richard G. Wolfendale, Mark Bengyel et al.
Influence of Many-Body Dipole-Dipole Interactions on Excitation Transfer in a Dense Gas
A. A. Bobrov, S. A. Saakyan, B. B. Zelener et al.