OPTICS & OPTOELECTRONIC TECHNOLOGY, Volume. 20, Issue 6, 1(2022)

Application of Gravity Survey and Its Development Tendency Driving by Cold Atom Technology

ZHOU Chao
Author Affiliations
  • [in Chinese]
  • show less
    References(32)

    [1] [1] Kasevich M, Chu S. Atomic interferometry using stimulated Raman transitions[J]. Physical Review Letters, 1991, 67(2): 181-184.

    [2] [2] Peters A, Chung K Y, Chu S. Measurement of gravitational acceleration by dropping atoms[J]. Nature, 1999, 400: 849.

    [3] [3] Stephan Kleinert, Endre Kajari, Wolfgang P, et al. Representation-free description of light-pulse atom interferometry including non-inertial effects[J]. Physics Reports, 2015, 605: 1-50.

    [4] [4] Kasevich M, S Chu. Measurement of the gravitational acceleration of an atom with a light-pulse atom interferometer[J]. Appl. Phys. B, 1992, 54: 321.

    [5] [5] David M, Giltner Roger W, Siu Au Lee, et al. Theoretical and experimental study of the Bragg scattering of atoms from a standing light wave[J]. Phys. Rev. A, 1995, 52: 3966-3972.

    [6] [6] Holger Müller, Sheng-Wey Chiow, Steven Chu, et al. Atom interferometry with up to 24-photon-momentum-transfer beam splitters[J]. Phys. Rev. Lett., 2008, 100(18): 180405.

    [7] [7] Altin P A, Johnsson M T, Negnevitsky V, et al. Precision atomic gravimeter based on Bragg diffraction[J]. New Journal of Physics, 2013, 15(2): 023009.

    [8] [8] Amico G D, Borselli F, Cacciapuoti L, et al. Bragg interferometer for gravity gradient measurements[J]. Phys. Rev. A, 2016, 93: 063628.

    [9] [9] Liang Hu, Nicola Poli, Guglielmo M Tino, et al. Atom interferometry with the Sr optical clock transition[J]. Phys. Rev. Lett., 2017, 119(26): 555-559.

    [10] [10] Rudolph Jan, Wilkason Thomas, Megan Nantel, et al. Large momentum transfer clock atom interferometry on the 689 nm intercombination line of strontium[J]. Phys. Rev. Lett., 2020, 124: 083604.

    [11] [11] Ferrari G, Poli N, Sorrentino F. Long-lived Bloch oscillations with Bosonic Sr atoms and application to gravity measurement at the micrometer scale[J]. Phys. Rev. Lett., 2006, 97: 060402.

    [14] [14] Ménoret V, Vermeulen P, Le Moigne N, et al. Gravity measurements below 10-9 g with a transportable absolute quantum gravimeter[J]. Sci. Rep., 2018, 8(1): 12300.

    [15] [15] Muquans. Deployment of our quantum gravimeter on Mount Etna[EB/OL]. https://www.muquans.com/new/deployment-of-our-quantum-gravimeter-on-mount-etna/, 2020-07-31/2022-10-22.

    [16] [16] Wu S, Feng J, Li C, et al. The results of 10th international comparison of absolute gravimeters (ICAG-2017)[J]. J. Geod, 2021, 95: 63.

    [17] [17] Asenbaum Peter, Overstreet Chris, Kim Minjeong, et al. Atom-interferometric test of the equivalence principle at the 10-12 level[J]. Phys. Rev. Lett., 2020, 125: 191101.

    [18] [18] Bothwell T, Kennedy, C J, et al. Resolving the gravitational redshift across a millimetre-scale atomic sample[J]. Nature, 2022, 602: 420-424.

    [19] [19] Biedermann G W, Kasevich M, Deslauriers L, et al. Testing gravity with cold-atom interferometers[J]. Phys. Rev. A, 2009, 91: 033629.

    [20] [20] Sokolov Alexandr, Anton Krasnov. An integrated gravimetric system to measure absolute gravity aboard a moving base[C]. Inertial Sensors and Systems (ISS), IEEE, 2018: 1-15.

    [21] [21] Bidel Y, Zahzam N, Blanchard C, et al. Absolute marine gravimetry with matter-wave interferometry[J]. Nat. Commun., 2018, 9: 627.

    [22] [22] Bidel Y, Zahzam N, Bresson A, et al. Absolute airborne gravimetry with a cold atom sensor[J]. J Geod, 2020: 94, 20.

    [24] [24] Pavlis N K, Holmes S A, Factor J K, et al. The development and evaluation of the Earth Gravitational Model 2008 (EGM2008)[J]. Geophys. Res, 2008, 117: B04406.

    [25] [25] Sandwell D T. Evolving the geodetic infrastructure to meet new scientific needs[M]. Washington, DC: The National Academies Press, 2020.

    [27] [27] Tapley B D, Bettadpur S, Watkins M, et al. The gravity recovery and climate experiment: Mission overview and early results[J]. Geophys. Res. Lett., 2004, 31: L09607.

    [28] [28] Zhu S, Reigber C, K?nig R. Integrated adjustment of CHAMP, GRACE, and GPS data[J]. Journal of Geodesy, 2004, 78: 103-108.

    [29] [29] NASA. Grace Mission-Spacecraft[EB/OL]. https://www.nasa.gov/mision_names/GRACE/spacecraft/index.html, 2012-02-15/2022-10-22.

    [31] [31] Bender Peter L, David N, Wiese R, et al. A possible Dual-GRACE mission with 90 degree and 63 degree inclination orbits[C]. ESA-ESTEC, 2008: 23-25.

    [32] [32] Christophe Bruno, Bernard Foulon, Fran?oise Liorzou, et al. Status of development of the future accelerometers for next generation gravity missions[J]. International Association of Geodesy Symposia, 2018, 149: 85-89.

    [33] [33] Petro Abrykosov, Roland Pail, Thomas Gruber, et al. Impact of a novel hybrid accelerometer on satellite gravimetry performance[J]. Advances in Space Research, 2019, 63(10): 3235-3248.

    [34] [34] Kovachy Tim, Hogan Jason M, Sugarbaker Alex, et al. Matter wave lensing to Picokelvin temperatures[J]. Phys. Rev. Lett., 2015, 114: 143004.

    [35] [35] Migliaccio, F Reguzzoni M, Batsukh K, et al. MOCASS: A satellite mission concept using cold atom interferometry for measuring the earth gravity field[J]. Surv Geophys, 2019, 40: 1029-1053.

    [36] [36] Devani D, Maddox S, Renshaw R, et al. Gravity sensing: cold atom trap onboard a 6U[J]. CubeSat. CEAS Space, 2020, J12: 539-549.

    [37] [37] Carraz Olivier, Siemes C, Massotti L, et al. Measuring the earth's gravity field with cold atom interferometers[J]. arXiv Preprint arXiv:1506.03989, 2015.

    CLP Journals

    [1] GAO Jun, CHI Hao, QI Zhi-qiang, XIONG Bo-tao. Study of Tuning and Frequency Locking Characteristics of 100 kHz Diode Laser Seed[J]. OPTICS & OPTOELECTRONIC TECHNOLOGY, 2023, 21(5): 61

    [2] LIU Jun-han, XIONG Chang-xin, QU Tian-liang, ZHANG Xi, WANG Chan, ZHAO Ming-qiang. Precision Machining Technology of High Q Value Hemispherical Resonator[J]. OPTICS & OPTOELECTRONIC TECHNOLOGY, 2023, 21(4): 117

    Tools

    Get Citation

    Copy Citation Text

    ZHOU Chao. Application of Gravity Survey and Its Development Tendency Driving by Cold Atom Technology[J]. OPTICS & OPTOELECTRONIC TECHNOLOGY, 2022, 20(6): 1

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category:

    Received: Jul. 25, 2022

    Accepted: --

    Published Online: Jan. 16, 2023

    The Author Email:

    DOI:

    CSTR:32186.14.

    Topics