OPTICS & OPTOELECTRONIC TECHNOLOGY, Volume. 21, Issue 3, 1(2023)

DevelopmentStatusandTendencyof Cold-AtomGravityGradiometer

SONGHong-wei
Author Affiliations
  • [in Chinese]
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    References(29)

    [1] [1] Wu L, Tian J W. Automated gravity gradient tensor inversion for underwater object detection[J]. Journal of GeophysicsandEngineering, 2010, 7(4):410-416.

    [2] [2] DaiC, ShumCK, WangR, et al. Improvedconstraintsonseismicsourceparametersofthe2011Tohokuearthquake fromGRACEgravityandgravitygradientchanges[J]. GeophysicalResearchLetters, 2014, 41(6):1929-1936.

    [3] [3] BPawlowski. Gravitygradiometryinresourceexploration[J]. LeadingEdge, 1998, 17(1):51-52.

    [7] [7] J A Richeson. Gravity gradiometer aided inertial navigation within non-GNSS environments[D]. Maryland: UniversityofMaryland, 2008.

    [10] [10] M J Snadden, J M McGuirk, P. Bouyer, et al. Measurement of the Earth’s Gravity Gradient with an Atom Interferometer-BasedGravityGradiometer[J]. Phys.Rev.Lett., 1998, 81(5): 971-974.

    [11] [11] Kasevich M, Chu S. Atomic interferometry using stimulated Raman transitions[J]. Phys. Rev. Lett., 1991, 67(2): 181-184

    [12] [12] MKasevich, SChu. Measurementofthegravitationalaccelerationofanatomwithalight-pulseatominterferometer[J]. Appl.Phys.B, 1992, 54:321-332.

    [13] [13] G T Foster, J B Fixler, J M McGuirk, et al. Method of phase extraction between coupled atom interferometers usingellipse-specificfitting[J]. Opt.Lett., 2002, 27(11):951-953.

    [14] [14] McGuirkJM, FosterGT, FixlerJB, et al. Sensitiveabsolute-gravitygradiometryusing atominterferometry[J]. Phys.Rev.A.2002, 65(3):033608.

    [15] [15] Biedermann GW, Wu X, Deslauriers L, et al. Testinggravitywithcold-atominterferometers[J]. Phys. Rev.A, 2015, 91(3):033629.

    [16] [16] XWu.Gravitygradientsurveywithamobileatominterferometer[D]. Stanford:StanfordUniversity, 2009.

    [17] [17] Chetan Mahadeswaraswamy. Atom interferometric gravity gradiometer:disturbance compensation and mobile gradiometry[D]. Stanford:StanfordUniversity, 2009.

    [18] [18] Sorrentino F, Bodart Q, Cacciapuoti L, et al. Sensitivitylimits of a Raman atom interferometer as a gravity gradiometer[J]. Phys.Rev.A, 2014, 89(2): 023607.

    [19] [19] Rosi G, Sorrentino F, Cacciapuoti L, et al. Precision measurement of the Newtonian gravitational constant using coldatoms[J]. Nature, 2014, 510:518-521.

    [20] [20] G. D’Amico, F.Borselli, L. Cacciapuoti, et al. Bragginterferometer forgravitygradient measurements[J]. Phys. Rev.A, 2016, 93:063628.

    [21] [21] Camille Janvier, Vincent Ménoret, BrunoDesruelle. Acompact differential gravimeteratthequantumprojection noiselimit[J]. arXiv, 2022, 2201.03345v1.

    [22] [22] StrayB, LambA, KaushikA, et al. Quantumsensingforgravitycartography[J]. Nature, 2022, 602:590-594.

    [23] [23] I Perrin, Y Bidel, N Zahzam, et al. Proof-of-principle demonstration of vertical-gravity-gradient measurement usingasingle-proof-massdouble-loopatominterferometer[J]. Phys.Rev.A, 2019, 99:013601.

    [24] [24] De-Kai Mao, Xiao-Bing Deng, Hua-Qing Luo, et al. A dual-magneto-optical-trap atom gravity gradiometer for determiningtheNewtoniangravitationalconstant[J]. Rev.Sci.Instrum., 2021, 92(5):053202.

    [26] [26] WeiLyu, Jia-QiZhong, Xiao-WeiZhang, et al. CompactHigh-ResolutionAbsolute-GravityGradiometerBasedon AtomInterferometers[J]. Phys.Rev.Appl, 2022, 18:054091.

    [29] [29] K I Lee, JA Kim, H R Noh, et al. Single-beam atom trap in a pyramidal and conical hollow mirror[J]. Opt. Lett., 1996, 21:1177.

    [30] [30] QBodart, S Merlet, NMalossi, et al. Acoldatompyramidalgravimeterwithasinglelaserbeam[J]. Appl.Phys. Lett., 2010, 96:134101.

    [31] [31] FLienhart, S Boussen, O Carraz, et al. Compactandrobustlasersystemforrubidiumlasercoolingbased onthe frequencydoublingofafiberbenchat1560nm[J]. Appl.Phys.B, 2007, 89:177-180.

    [32] [32] O Carraz, F Lienhart, R Charrière, et al. Compact and robust laser system for onboard atom interferometry[J]. Appl.Phys.B, 2009, 97:405-411.

    [35] [35] G D McDonald, C C N Kuhn, S Bennetts, et al. 80.k momentum separation with Bloch oscillations in an opticallyguidedatominterferometer[J]. Phys.Rev.A, 2013, 88:053620.

    [36] [36] GuglielmoM.Tino, AngeloBassi, GiuseppeBianco, et al. SAGE:Aproposalfor aspaceatomicgravityexplorer[J]. Eur.Phys.J.D, 2019, 73:228.

    [37] [37] ATrimeche, BBattelier, DBecker, et al. Conceptstudyandpreliminarydesignof acoldatominterferometer for spacegravitygradiometry[J]. Class.QuantumGrav., 2019, 36:215004.

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    SONGHong-wei. DevelopmentStatusandTendencyof Cold-AtomGravityGradiometer[J]. OPTICS & OPTOELECTRONIC TECHNOLOGY, 2023, 21(3): 1

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    Paper Information

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    Received: Apr. 25, 2023

    Accepted: --

    Published Online: Dec. 28, 2023

    The Author Email:

    DOI:

    CSTR:32186.14.

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