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A Prototype of a Compact Rubidium-Based Optical Frequency Reference for Operation on Nanosatellites

Atomic Physics 2021-05-26 v1 Instrumentation and Detectors

Abstract

Space-borne optical frequency references based on spectroscopy of atomic vapors may serve as an integral part of compact optical atomic clocks, which can advance global navigation systems, or can be utilized for earth observation missions as part of laser systems for cold atom gradiometers. Nanosatellites offer low launch-costs, multiple deployment opportunities and short payload development cycles, enabling rapid maturation of optical frequency references and underlying key technologies in space. Towards an in-orbit demonstration on such a platform, we have developed a CubeSat-compatible prototype of an optical frequency reference based on the D2-transition in rubidium. A frequency instability of 1.7e-12 at 1 s averaging time is achieved. The optical module occupies a volume of 35 cm^3, weighs 73 g and consumes 780 mW of power.

Keywords

Cite

@article{arxiv.2105.02021,
  title  = {A Prototype of a Compact Rubidium-Based Optical Frequency Reference for Operation on Nanosatellites},
  author = {Aaron Strangfeld and Simon Kanthak and Max Schiemangk and Benjamin Wiegand and Andreas Wicht and Alexander Ling and Markus Krutzik},
  journal= {arXiv preprint arXiv:2105.02021},
  year   = {2021}
}
R2 v1 2026-06-24T01:47:59.579Z