Interferometry of Atomic Matter Waves in the Cold Atom Lab onboard the International Space Station
Abstract
Ultracold atomic gases hold unique promise for space science by capitalizing on quantum advantages and extended freefall, afforded in a microgravity environment, to enable next-generation precision sensors. Atom interferometers are a class of quantum sensors which can use freely falling gases of atoms cooled to sub-photon-recoil temperatures to provide unprecedented sensitivities to accelerations, rotations, and gravitational forces, and are currently being developed for space-based applications in gravitational, earth, and planetary sciences, as well as to search for subtle forces that could signify physics beyond General Relativity and the Standard Model. NASA's Cold Atom Lab (CAL) operates onboard the International Space Station as a multi-user facility for studies of ultracold atoms and to mature quantum technologies, including atom interferometry, in persistent microgravity. In this paper, we report on path-finding experiments utilizing ultracold Rb atoms in the CAL atom interferometer, which was enabled by an on-orbit upgrade of the CAL science module: A three-pulse Mach-Zehnder interferometer was studied to understand limitations from the influence of ISS vibrations. Additionally, Ramsey shear-wave interferometry was used to manifest interference patterns in a single run that were observable for over 150 ms free-expansion time. Finally, the CAL atom interferometer was used to remotely measure the photon recoil from the atom interferometer laser as a demonstration of the first quantum sensor using matter-wave interferometry in space.
Keywords
Cite
@article{arxiv.2402.14685,
title = {Interferometry of Atomic Matter Waves in the Cold Atom Lab onboard the International Space Station},
author = {Jason R. Williams and Charles A. Sackett and Holger Ahlers and David C. Aveline and Patrick Boegel and Sofia Botsi and Eric Charron and Ethan R. Elliott and Naceur Gaaloul and Enno Giese and Waldemar Herr and James R. Kellogg and James M. Kohel and Norman E. Lay and Matthias Meister and Gabriel Müller and Holger Müller and Kamal Oudrhiri and Leah Phillips and Annie Pichery and Ernst M. Rasel and Albert Roura and Matteo Sbroscia and Wolfgang P. Schleich and Christian Schneider and Christian Schubert and Bejoy Sen and Robert J. Thompson and Nicholas P. Bigelow},
journal= {arXiv preprint arXiv:2402.14685},
year = {2024}
}
Comments
14 pages, 5 figures