Design of a dual species atom interferometer for space
Thilo Schuldt, Christian Schubert, Markus Krutzik, Lluis Gesa Bote,, Naceur Gaaloul, Jonas Hartwig, Holger Ahlers, Waldemar Herr, Katerine, Posso-Trujillo, Jan Rudolph, Stephan Seidel, Thijs Wendrich, Wolfgang Ertmer,, Sven Herrmann, Andr\'e Kubelka-Lange, Alexander Milke

TL;DR
This paper presents a comprehensive design for a dual species atom interferometer optimized for space, addressing size, weight, power, and robustness to enable advanced gravitational and fundamental physics experiments in orbit.
Contribution
It introduces a detailed space-compatible design of a high-sensitivity dual species atom interferometer, including all key components and system specifications.
Findings
Design fits within satellite constraints for mass, volume, and power
Includes detailed specifications for physics package, laser system, and electronics
Demonstrates feasibility of space-based atom interferometry for fundamental physics
Abstract
Atom interferometers have a multitude of proposed applications in space including precise measurements of the Earth's gravitational field, in navigation & ranging, and in fundamental physics such as tests of the weak equivalence principle (WEP) and gravitational wave detection. While atom interferometers are realized routinely in ground-based laboratories, current efforts aim at the development of a space compatible design optimized with respect to dimensions, weight, power consumption, mechanical robustness and radiation hardness. In this paper, we present a design of a high-sensitivity differential dual species Rb/Rb atom interferometer for space, including physics package, laser system, electronics and software. The physics package comprises the atom source consisting of dispensers and a 2D magneto-optical trap (MOT), the science chamber with a 3D-MOT, a magnetic trap…
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