Fetching the paper…
Reading the bibliography…
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.
M. Kasevich and S. Chu, “Measurement of the gravitational acceleration of an atom with a light-pulse atom interferometer,” Appl. Phys. B 54
1992
Earlier work this paper cites.
W. M. Itano, J. C. Bergquist, J. J. Bollinger, J. M. Gilligan, D. J. Heinzen, F. L. Moore, M. G. Raizen, and D. J. Wineland, “Quantum projection noise: Population fluctuations in two-level systems,” Phys. Rev. A 47
1993
Earlier work this paper cites.
M. J. Snadden, J. M. McGuirk, P. Bouyer, K. G. Haritos, and M. A. Kasevich, “Measurement of the Earth’s Gravity Gradient with an Atom Interferometer-Based Gravity Gradiometer,” Phys. Rev. Lett. 81
1998
Earlier work this paper cites.
J. E. Simsarian, J. Denschlag, M. Edwards, C. W. Clark, L. Deng, E. W. Hagley, K. Helmerson, S. L. Rolston, and W. D. Phillips, “Imaging the Phase of an Evolving Bose-Einstein Condensate Wave Function,” Phys. Rev. Lett. 85
2000
Earlier work this paper cites.
J. M. McGuirk, G. T. Foster, J. B. Fixler, M. J. Snadden, and M. A. Kasevich, “Sensitive absolute-gravity gradiometry using atom interferometry,” Phys. Rev. A 65
2002
Earlier work this paper cites.
S. Gupta, K. Dieckmann, Z. Hadzibabic, and D. E. Pritchard, “Contrast Interferometry using Bose-Einstein Condensates to Measure h / m h/m and α \alpha ,” Phys. Rev. Lett. 89
2002
Earlier work this paper cites.
G. T. Foster, J. B. Fixler, J. M. McGuirk, and M. A. Kasevich, “Method of phase extraction between coupled atom interferometers using ellipse-specific fitting,” Opt. Lett. 27
2002
Earlier work this paper cites.
C. J. Bordé, “Quantum Theory of Atom-Wave Beam Splitters and Application to Multidimensional Atomic Gravito-Inertial Sensors,” Gen. Relativ. Gravit. 36
2004
Earlier work this paper cites.
N. Yu, J. Kohel, J. Kellogg, and L. Maleki, “Development of an atom-interferometer gravity gradiometer for gravity measurement from space,” Appl. Phys. B 84
2006
Earlier work this paper cites.
G. Ferrari, N. Poli, F. Sorrentino, and G. M. Tino, “Long-Lived Bloch Oscillations with Bosonic Sr Atoms and Application to Gravity Measurement at the Micrometer Scale,” Phys. Rev. Lett. 97
2006
Earlier work this paper cites.
K. Bongs, R. Launay, and M. A. Kasevich, “High-order inertial phase shifts for time-domain atom interferometers,” Appl. Phys. 84
2006
Earlier work this paper cites.
J. B. Fixler, G. T. Foster, J. M. McGuirk, and M. A. Kasevich, “Atom Interferometer Measurement of the Newtonian Constant of Gravity,” Science 315
2007
Earlier work this paper cites.
H. Müller, S.-w. Chiow, S. Herrmann, S. Chu, and K.-Y. Chung, “Atom-Interferometry Tests of the Isotropy of Post-Newtonian Gravity,” Phys. Rev. Lett. 100
2008
Earlier work this paper cites.
H. Müller, S.-w. Chiow, Q. Long, S. Herrmann, and S. Chu, “Atom Interferometry with up to 24-Photon-Momentum-Transfer Beam Splitters,” Phys. Rev. Lett. 100
2008
Earlier work this paper cites.
P. Cheinet, B. Canuel, F. Pereira Dos Santos, A. Gauguet, F. Yver-Leduc, and A. Landragin, “Measurement of the sensitivity function in a time-domain atomic interferometer,” IEEE Trans. Instrum. Meas. 57
2008
Earlier work this paper cites.
J. M. Hogan, D. M. S. Johnson, and M. A. Kasevich, “Light-pulse atom interferometry,” in Proceedings of the International School of Physics “Enrico Fermi” , E. Arimondo, W. Ertmer, W. P. Schleich, and E. Rasel, eds., vol. 168: Atom Optics and Space Physics, pp. 411–447 (IOS Press, Amsterdam, 2009). URL http://ebooks.iospress.nl/volumearticle/26737
2009
Earlier work this paper cites.
A. D. Cronin, J. Schmiedmayer, and D. E. Pritchard, “Optics and interferometry with atoms and molecules,” Rev. Mod. Phys. 81
2009
Earlier work this paper cites.
G. Varoquaux, R. A. Nyman, R. Geiger, P. Cheinet, A. Landragin, and P. Bouyer, “How to estimate the differential acceleration in a two-species atom interferometer to test the equivalence principle,” New J. Phys. 11
2009
Earlier work this paper cites.
K. McPherson, E. Kelly, and J. Keller, “Acceleration environment of the International Space Station,” in 47th AIAA Aerospace Sciences Meeting including The New Horizons Forum and Aerospace Exposition , pp. AIAA 2009–0957 (2009). URL https://arc.aiaa.org/doi/abs/10.2514/6.2009-957
2009
Earlier work this paper cites.
T. van Zoest, N. Gaaloul, Y. Singh, H. Ahlers, W. Herr, S. T. Seidel, W. Ertmer, E. Rasel, M. Eckart, E. Kajari, S. Arnold, G. Nandi, W. P. Schleich, R. Walser, A. Vogel, K. Sengstock, K. Bongs, W. Lewoczko-Adamczyk, M. Schiemangk, T. Schuldt, A. Peters, T. Könemann, H. Müntinga, C. Lämmerzahl, H. Dittus, T. Steinmetz, T. W. Hänsch, and J. Reichel, “Bose-Einstein Condensation in Microgravity,” Science 328
2010
Earlier work this paper cites.
S. R. Segal, Q. Diot, E. A. Cornell, A. A. Zozulya, and D. Z. Anderson, “Revealing buried information: Statistical processing techniques for ultracold-gas image analysis,” Phys. Rev. A 81
2010
Earlier work this paper cites.
R. Geiger, V. Ménoret, G. Stern, N. Zahzam, P. Cheinet, B. Battelier, A. Villing, F. Moron, M. Lours, Y. Bidel, A. Bresson, A. Landragin, and P. Bouyer, “Detecting inertial effects with airborne matter-wave interferometry,” Nat. Commun. 2
2011
Earlier work this paper cites.
J. M. Hogan, D. M. S. Johnson, S. Dickerson, T. Kovachy, A. Sugarbaker, S.-w. Chiow, P. W. Graham, M. A. Kasevich, B. Saif, S. Rajendran, P. Bouyer, B. D. Seery, L. Feinberg, and R. Keski-Kuha, “An atomic gravitational wave interferometric sensor in low earth orbit (AGIS-LEO),” Gen. Relativ. Gravit. 43
2011
Earlier work this paper cites.
N. Yu and M. Tinto, “Gravitational wave detection with single-laser atom interferometers,” Gen. Relativ. Gravit. 43
2011
Earlier work this paper cites.
F. Sorrentino, K. Bongs, P. Bouyer, L. Cacciapuoti, M. de Angelis, H. Dittus, W. Ertmer, J. Hartwig, M. Hauth, S. Herrmann, K. Huang, M. Inguscio, E. Kajari, T. Könemann, C. Lämmerzahl, A. Landragin, G. Modugno, F. P. dos Santos, A. Peters, M. Prevedelli, E. M. Rasel, W. P. Schleich, M. Schmidt, A. Senger, K. Sengstock, G. Stern, G. M. Tino, T. Valenzuela, R. Walser, and P. Windpassinger, “The Space Atom Interferometer project: Status and prospects,” J. Phys.: Conf. Ser. 327
2011
Earlier work this paper cites.
P. A. Altin, M. T. Johnsson, V. Negnevitsky, G. R. Dennis, R. P. Anderson, J. E. Debs, S. S. Szigeti, K. S. Hardman, S. Bennetts, G. D. McDonald, L. D. Turner, J. D. Close, and N. P. Robins, “Precision atomic gravimeter based on Bragg diffraction,” New J. Phys. 15
2013
Earlier work this paper cites.
S.-Y. Lan, P.-C. Kuan, B. Estey, D. English, J. M. Brown, M. A. Hohensee, and H. Müller, “A Clock Directly Linking Time to a Particle’s Mass,” Science 339
2013
Earlier work this paper cites.
H. Müntinga, H. Ahlers, M. Krutzik, A. Wenzlawski, S. Arnold, D. Becker, K. Bongs, H. Dittus, H. Duncker, N. Gaaloul, C. Gherasim, E. Giese, C. Grzeschik, T. W. Hänsch, O. Hellmig, W. Herr, S. Herrmann, E. Kajari, S. Kleinert, C. Lämmerzahl, W. Lewoczko-Adamczyk, J. Malcolm, N. Meyer, R. Nolte, A. Peters, M. Popp, J. Reichel, A. Roura, J. Rudolph, M. Schiemangk, M. Schneider, S. T. Seidel, K. Sengstock, V. Tamma, T. Valenzuela, A. Vogel, R. Walser, T. Wendrich, P. Windpassinger, W. Zeller, T. van Zoest, W. Ertmer, W. P. Schleich, and E. M. Rasel, “Interferometry with Bose-Einstein Condensates in Microgravity,” Phys. Rev. Lett. 110
2013
Cited alongside, same era.
D. Schlippert, J. Hartwig, H. Albers, L. L. Richardson, C. Schubert, A. Roura, W. P. Schleich, W. Ertmer, and E. M. Rasel, “Quantum Test of the Universality of Free Fall,” Phys. Rev. Lett. 112
2014
Cited alongside, same era.
G. Rosi, F. Sorrentino, L. Cacciapuoti, M. Prevedelli, and G. M. Tino, “Precision measurement of the Newtonian gravitational constant using cold atoms.” Nature 510
2014
Cited alongside, same era.
D. Becker, M. D. Lachmann, S. T. Seidel, H. Ahlers, A. N. Dinkelaker, J. Grosse, O. Hellmig, H. Müntinga, V. Schkolnik, T. Wendrich, A. Wenzlawski, B. Weps, R. Corgier, T. Franz, N. Gaaloul, W. Herr, D. Lüdtke, M. Popp, S. Amri, H. Duncker, M. Erbe, A. Kohfeldt, A. Kubelka-Lange, C. Braxmaier, E. Charron, W. Ertmer, M. Krutzik, C. Lämmerzahl, A. Peters, W. P. Schleich, K. Sengstock, R. Walser, A. Wicht, P. Windpassinger, and E. M. Rasel, “Space-borne Bose-Einstein condensation for precision interferometry,” Nature 562
2018
Later among the works it cites.
B. Canuel, A. Bertoldi, L. Amand, E. Pozzo di Borgo, T. Chantrait, C. Danquigny, M. Dovale Álvarez, B. Fang, A. Freise, R. Geiger, J. Gillot, S. Henry, J. Hinderer, D. Holleville, J. Junca, G. Lefèvre, M. Merzougui, N. Mielec, T. Monfret, S. Pelisson, M. Prevedelli, S. Reynaud, I. Riou, Y. Rogister, S. Rosat, E. Cormier, A. Landragin, W. Chaibi, S. Gaffet, and P. Bouyer, “Exploring gravity with the MIGA large scale atom interferometer,” Sci. Rep. 8
2018
Later among the works it cites.
K. Bongs, M. Holynski, J. Vovrosh, P. Bouyer, G. Condon, E. Rasel, C. Schubert, W. P. Schleich, and A. Roura, “Taking atom interferometric quantum sensors from the laboratory to real-world applications,” Nature Rev. Phys. 1
alphaXiv searches the wider corpus for related work and actual follow-ups.
alphaXiv is searching for related work…
A. Roura, W. Zeller, and W. P. Schleich, “Overcoming loss of contrast in atom interferometry due to gravity gradients,” New J. Phys. 16
2014
Cited alongside, same era.
M. G. Tarallo, T. Mazzoni, N. Poli, D. Sutyrin, X. Zhang, and G. Tino, “Test of Einstein equivalence principle for 0-spin and half-integer-spin atoms: Search for spin-gravity coupling effects,” Phys. Rev. Lett. 113
2014
Cited alongside, same era.
M. Krutzik, “Matter wave interferometry in microgravity,” Ph.D. thesis, Humboldt-Universität zu Berlin, Mathematisch-Naturwissenschaftliche Fakultät I (2014). URL http://dx.doi.org/10.18452/17050
2014
Cited alongside, same era.
L. Zhou, S. Long, B. Tang, X. Chen, F. Gao, W. Peng, W. Duan, J. Zhong, Z. Xiong, J. Wang, Y. Zhang, and M. Zhan, “Test of Equivalence Principle at 10 − 8 1{0}^{-8} Level by a Dual-Species Double-Diffraction Raman Atom Interferometer,” Phys. Rev. Lett. 115
2015
Cited alongside, same era.
J. Hartwig, S. Abend, C. Schubert, D. Schlippert, H. Ahlers, K. Posso-Trujillo, N. Gaaloul, W. Ertmer, and E. M. Rasel, “Testing the universality of free fall with rubidium and ytterbium in a very large baseline atom interferometer,” New J. Phys. 17
2015
Cited alongside, same era.
S. Kleinert, E. Kajari, A. Roura, and W. P. Schleich, “Representation-free description of light-pulse atom interferometry including noninertial effects,” Phys. Reports 605
2015
Cited alongside, same era.
C. Freier, M. Hauth, V. Schkolnik, B. Leykauf, M. Schilling, H. Wziontek, H.-G. Scherneck, J. Müller, and A. Peters, “Mobile quantum gravity sensor with unprecedented stability,” J. Phys.: Conf. Ser. 723
2016
Cited alongside, same era.
P. Gillot, B. Cheng, A. Imanaliev, S. Merlet, and F. Pereira Dos Santos, “The LNE-SYRTE cold atom gravimeter,” in Proceedings of the 2016 European Frequency and Time Forum (EFTF) , pp. 1–3 (York, UK, 2016). York, UK
2016
Cited alongside, same era.
B. Elder, J. Khoury, P. Haslinger, M. Jaffe, H. Müller, and P. Hamilton, “Chameleon dark energy and atom interferometry,” Phys. Rev. D 94
2016
Cited alongside, same era.
2019
Later among the works it cites.
X. Wu, Z. Pagel, B. S. Malek, T. H. Nguyen, F. Zi, D. S. Scheirer, and H. Müller, “Gravity surveys using a mobile atom interferometer,” Sci. Adv. 5
2019
Later among the works it cites.
S. Loriani, A. Friedrich, C. Ufrecht, F. Di Pumpo, S. Kleinert, S. Abend, N. Gaaloul, C. Meiners, C. Schubert, D. Tell, É. Wodey, M. Zych, W. Ertmer, A. Roura, D. Schlippert, W. P. Schleich, E. M. Rasel, and E. Giese, “Interference of clocks: A quantum twin paradox,” Sci. Adv. 5
2019
Later among the works it cites.
V. Xu, M. Jaffe, C. D. Panda, S. L. Kristensen, L. W. Clark, and H. Müller, “Probing gravity by holding atoms for 20 seconds,” Science 366
2019
Later among the works it cites.
D. C. Aveline, J. R. Williams, E. R. Elliott, C. Dutenhoffer, J. R. Kellogg, J. M. Kohel, N. E. Lay, K. Oudrhiri, R. F. Shotwell, N. Yu, and R. J. Thompson, “Observation of Bose-Einstein condensates in an Earth-orbiting research lab,” Nature 582
2020
Later among the works it cites.
A. R. Pollard, E. R. Moan, C. A. Sackett, E. R. Elliott, and R. J. Thompson, “Quasi-Adiabatic External State Preparation of Ultracold Atoms in Microgravity,” Microgravity Sci. Technol. 32
2020
Later among the works it cites.
P. Asenbaum, C. Overstreet, M. Kim, J. Curti, and M. A. Kasevich, “Atom-Interferometric Test of the Equivalence Principle at the 10 − 12 {10}^{-12} Level,” Phys. Rev. Lett. 125
2020
Later among the works it cites.
A. Roura, “Gravitational Redshift in Quantum-Clock Interferometry,” Phys. Rev. X 10
2020
Later among the works it cites.
C. Ufrecht, F. Di Pumpo, A. Friedrich, A. Roura, C. Schubert, D. Schlippert, E. M. Rasel, W. P. Schleich, and E. Giese, “Atom-interferometric test of the universality of gravitational redshift and free fall,” Phys. Rev. Res. 2
2020
Later among the works it cites.
L. Morel, Z. Yao, P. Cladé, and S. Guellati-Khélifa, “Determination of the fine-structure constant with an accuracy of 81 parts per trillion,” Nature 588
2020
Later among the works it cites.
L. Badurina, E. Bentine, D. Blas, K. Bongs, D. Bortoletto, T. Bowcock, K. Bridges, W. Bowden, O. Buchmueller, C. Burrage, J. Coleman, G. Elertas, J. Ellis, C. Foot, V. Gibson, M. Haehnelt, T. Harte, S. Hedges, R. Hobson, M. Holynski, T. Jones, M. Langlois, S. Lellouch, M. Lewicki, R. Maiolino, P. Majewski, S. Malik, J. March-Russell, C. McCabe, D. Newbold, B. Sauer, U. Schneider, I. Shipsey, Y. Singh, M. Uchida, T. Valenzuela, M. van der Grinten, V. Vaskonen, J. Vossebeld, D. Weatherill, and I. Wilmut, “AION: An atom interferometer observatory and network,” J. Cosmol. Astropart. Phys. 2020
2020
Later among the works it cites.
S. Hartmann, J. Jenewein, E. Giese, S. Abend, A. Roura, E. M. Rasel, and W. P. Schleich, “Regimes of atomic diffraction: Raman versus Bragg diffraction in retroreflective geometries,” Phys. Rev. A 101
2020
Later among the works it cites.
M. Gersemann, M. Gebbe, S. Abend, C. Schubert, and E. Rasel, “Differential interferometry using a Bose-Einstein condensate,” Eur. Phys. J. D 74
2020
Later among the works it cites.
A. Roura, C. Schubert, D. Schlippert, and E. M. Rasel, “Measuring gravitational time dilation with delocalized quantum superpositions,” Phys. Rev. D 104
2021
Later among the works it cites.
F. Di Pumpo, C. Ufrecht, A. Friedrich, E. Giese, W. P. Schleich, and W. G. Unruh, “Gravitational Redshift Tests with Atomic Clocks and Atom Interferometers,” PRX Quantum 2
2021
Later among the works it cites.
C. Deppner, W. Herr, M. Cornelius, P. Stromberger, T. Sternke, C. Grzeschik, A. Grote, J. Rudolph, S. Herrmann, M. Krutzik, A. Wenzlawski, R. Corgier, E. Charron, D. Guéry-Odelin, N. Gaaloul, C. Lämmerzahl, A. Peters, P. Windpassinger, and E. M. Rasel, “Collective-Mode Enhanced Matter-Wave Optics,” Phys. Rev. Lett. 127
2021
Later among the works it cites.
K. Frye, S. Abend, W. Bartosch, A. Bawamia, D. Becker, H. Blume, C. Braxmaier, S.-W. Chiow, M. A. Efremov, W. Ertmer, P. Fierlinger, T. Franz, N. Gaaloul, J. Grosse, C. Grzeschik, O. Hellmig, V. A. Henderson, W. Herr, U. Israelsson, J. Kohel, M. Krutzik, C. Kürbis, C. Lämmerzahl, M. List, D. Lüdtke, N. Lundblad, J. P. Marburger, M. Meister, M. Mihm, H. Müller, H. Müntinga, A. M. Nepal, T. Oberschulte, A. Papakonstantinou, J. Perovs̆ek, A. Peters, A. Prat, E. M. Rasel, A. Roura, M. Sbroscia, W. P. Schleich, C. Schubert, S. T. Seidel, J. Sommer, C. Spindeldreier, D. Stamper-Kurn, B. K. Stuhl, M. Warner, T. Wendrich, A. Wenzlawski, A. Wicht, P. Windpassinger, N. Yu, and L. Wörner, “The Bose-Einstein Condensate and Cold Atom Laboratory,” EPJ Quantum Technol. 8
2021
Later among the works it cites.
M. D. Lachmann, H. Ahlers, D. Becker, A. N. Dinkelaker, J. Grosse, O. Hellmig, H. Müntinga, V. Schkolnik, S. T. Seidel, T. Wendrich, A. Wenzlawski, B. Carrick, N. Gaaloul, D. Lüdtke, C. Braxmaier, W. Ertmer, M. Krutzik, C. Lämmerzahl, A. Peters, W. P. Schleich, K. Sengstock, A. Wicht, P. Windpassinger, and E. M. Rasel, “Ultracold atom interferometry in space,” Nat. Commun. 12
2021
Later among the works it cites.
N. Gaaloul, M. Meister, R. Corgier, A. Pichery, P. Boegel, W. Herr, H. Ahlers, E. Charron, J. R. Williams, R. J. Thompson, W. P. Schleich, E. M. Rasel, and N. P. Bigelow, “A space-based quantum gas laboratory at picokelvin energy scales,” Nat. Commun. 13
2022
Later among the works it cites.
R. A. Carollo, D. C. Aveline, B. Rhyno, S. Vishveshwara, C. Lannert, J. D. Murphree, E. R. Elliott, J. R. Williams, R. J. Thompson, and N. Lundblad, “Observation of ultracold atomic bubbles in orbital microgravity,” Nature 606
2022
Later among the works it cites.
2022
Later among the works it cites.
E. R. Elliott, D. C. Aveline, N. P. Bigelow, P. Boegel, S. Botsi, E. Charron, J. P. D’Incao, P. Engels, T. Estrampes, N. Gaaloul, J. R. Kellogg, J. M. Kohel, N. E. Lay, N. Lundblad, M. Meister, M. E. Mossman, G. Müller, H. Müller, K. Oudrhiri, L. E. Phillips, A. Pichery, E. M. Rasel, C. A. Sackett, M. Sbroscia, W. P. Schleich, R. J. Thompson, and J. R. Williams, “Quantum gas mixtures and dual-species atom interferometry in space,” Nature 623
2023
Later among the works it cites.
F. Di Pumpo, A. Friedrich, C. Ufrecht, and E. Giese, “Universality-of-clock-rates test using atom interferometry with T 3 {T}^{3} scaling,” Phys. Rev. D 107
2023
Later among the works it cites.
M. Abe, P. Adamson, M. Borcean, D. Bortoletto, K. Bridges, S. P. Carman, S. Chattopadhyay, J. Coleman, N. M. Curfman, K. DeRose, T. Deshpande, S. Dimopoulos, C. J. Foot, J. C. Frisch, B. E. Garber, S. Geer, V. Gibson, J. Glick, P. W. Graham, S. R. Hahn, R. Harnik, L. Hawkins, S. Hindley, J. M. Hogan, Y. Jiang, M. A. Kasevich, R. J. Kellett, M. Kiburg, T. Kovachy, J. D. Lykken, J. March-Russell, J. Mitchell, M. Murphy, M. Nantel, L. E. Nobrega, R. K. Plunkett, S. Rajendran, J. Rudolph, N. Sachdeva, M. Safdari, J. K. Santucci, A. G. Schwartzman, I. Shipsey, H. Swan, L. R. Valerio, A. Vasonis, Y. Wang, and T. Wilkason, “Matter-wave Atomic Gradiometer Interferometric Sensor (MAGIS-100),” Quantum Sci. Technol. 6
2058
Closest in time.