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Stand-alone vacuum cell for compact ultracold quantum technologies

Atomic Physics 2021-09-21 v2 Quantum Physics

Abstract

Compact vacuum systems are key enabling components for cold atom technologies, facilitating extremely accurate sensing applications. There has been important progress towards a truly portable compact vacuum system, however size, weight and power consumption can be prohibitively large, optical access may be limited, and active pumping is often required. Here, we present a centilitre-scale ceramic vacuum chamber with He-impermeable viewports and an integrated diffractive optic, enabling robust laser cooling with light from a single polarization-maintaining fibre. A cold atom demonstrator based on the vacuum cell delivers 10710^7 laser-cooled 87^{87}Rb atoms per second, using minimal electrical power. With continuous Rb gas emission active pumping yields a 10710^{-7}\,mbar equilibrium pressure, and passive pumping stabilises to 3×1063\times 10^{-6}\,mbar, with a 1717\,day time constant. A vacuum cell, with no Rb dispensing and only passive pumping, has currently kept a similar pressure for more than \ch{500 days}. The passive-pumping vacuum lifetime is several years, estimated from short-term He throughput, with many foreseeable improvements. This technology enables wide-ranging mobilization of ultracold quantum metrology.

Keywords

Cite

@article{arxiv.2101.07851,
  title  = {Stand-alone vacuum cell for compact ultracold quantum technologies},
  author = {Oliver S. Burrow and Paul F. Osborn and Edward Boughton and Francesco Mirando and David P. Burt and Paul F. Griffin and Aidan S. Arnold and Erling Riis},
  journal= {arXiv preprint arXiv:2101.07851},
  year   = {2021}
}

Comments

6 pages, 2 figures, to appear in Applied Physics Letters

R2 v1 2026-06-23T22:19:52.936Z