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We summarize the discussions at a virtual Community Workshop on Cold Atoms in Space concerning the status of cold atom technologies, the prospective scientific and societal opportunities offered by their deployment in space, and the developments needed before cold atoms could be operated in space.
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N. Ohmae, M. Takamoto, Y. Takahashi, M. Kokubun, K. Araki, A. Hinton et al., Transportable strontium optical lattice clocks operated outside laboratory at the level of 10 − 18 10^{-18} uncertainty , Adv. Quantum Technol. early view
2021
Later among the works it cites.
G. Petit, Sub-10–16 accuracy GNSS frequency transfer with IPPP , GPS Solutions 25
2021
Later among the works it cites.
B. P. Dix-Matthews, S. W. Schediwy, D. R. Gozzard, E. Savalle, F.-X. Esnault, T. Lévèque et al., Point-to-point stabilized optical frequency transfer with active optics , Nature Communications 12
2021
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Q. Shen, J.-Y. Guan, T. Zeng, Q.-M. Lu, L. Huang, Y. Cao et al., Experimental simulation of time and frequency transfer via an optical satellite–ground link at 10-18 instability , Optica 8
2021
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E. A. Burt, J. D. Prestage, R. L. Tjoelker, D. G. Enzer, D. Kuang, D. W. Murphy et al., Demonstration of a trapped-ion atomic clock in space , Nature 595
2021
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WMO, “The Status of the Global Climate Observing System 2021: The GCOS Status Report (GCOS-240).” https://gcos.wmo.int/en/gcos-status-report-2021
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R. Pail, “Impact of new measurement technologies for the monitoring of mass transport processes in the Earth system; “Quantum Gravimetry in Space and on Ground” Workshop, 26 - 27 May 2021.” https://quge.iag-aig.org/,https://quge.iag-aig.org/quge-meetings/workshop-wgq1
2021
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T. Lévèque, C. Fallet, M. Mandea, R. Biancale, J. M. Lemoine, S. Tardivel et al., Gravity field mapping using laser-coupled quantum accelerometers in space , Journal of Geodesy 95
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M. D. Lachmann, H. Ahlers, D. Becker, A. N. Dinkelaker, J. Grosse, O. Hellmig et al., Ultracold atom interferometry in space , Nature Communications 12
2021
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L. Biskupek, J. Müller and J.-M. Torre, Benefit of new high-precision LLR data for the determination of relativistic parameters , Universe 7
2021
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N. L. Figueroa, D. Budker and E. M. Rasel, Dark matter searches using accelerometer-based networks , Quantum Science and Technology 6
2021
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D. Antypas, O. Tretiak, K. Zhang, A. Garcon, G. Perez, M. G. Kozlov et al., Probing fast oscillating scalar dark matter with atoms and molecules , Quantum Science and Technology 6
2021
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2021
Later among the works it cites.
2021
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K. Frye, S. Abend, W. Bartosch, A. Bawamia, D. Becker, H. Blume et al., The Bose-Einstein Condensate and Cold Atom Laboratory , EPJ Quantum Technology 8
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ESA, “Call for a medium-size and a fast mission opportunity in ESA’s science programme.” https://www.cosmos.esa.int/web/call-for-missions-2021
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2022
Closest in time.
“ESA AGENDA 2025: Make space for Europe.” https://esamultimedia.esa.int/docs/ESA_Agenda_2025_final.pdf
2025
Closest in time.
“US National Academies Decadal Survey on Biological and Physical Sciences Research in Space 2023-2032.” https://www.nationalacademies.org/our-work/decadal-survey-on-life-and-physical-sciences-research-in-space-2023-2032
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Closest in time.
“Voyage 2050: Final recommendations from the Voyage 2050 Senior Committee.” https://www.cosmos.esa.int/documents/1866264/1866292/Voyage2050-Senior-Committee-report-public.pdf/e2b2631e-5348-5d2d-60c1-437225981b6b?t=1623427287109
2050
Closest in time.