Atomic clocks and atom interferometry

被引:0
|
作者
Bordé, CJ [1 ]
机构
[1] Univ Paris 13, CNRS, Phys Lasers Lab, UMR 7538, F-93430 Villetaneuse, France
关键词
D O I
暂无
中图分类号
O412 [相对论、场论]; O572.2 [粒子物理学];
学科分类号
摘要
We show that the language of atom interferometry [1] provides a unified picture for microwave and optical atomic clocks as well as for gravito-inertial sensors. The sensitivity and accuracy of these devices, is now such that a new theoretical framework [2] common to all these interferometers, is required and which includes: 1 - A fully quantum mechanical treatment of the atomic motion in free space and in the presence of a gravitational field (most cold atom interferometric devices use atoms in "free fall" in a fountain geometry), 2 - An account of simultaneous actions of gravitational and electromagnetic fields in the interaction zones, 3 - A second quantization of the matter fields to take into account their fermionic or bosonic character in order to discuss the role of coherent sources and their noise properties, 4 - A covariant treatment including spin to evaluate general relativistic effects. A theoretical description of atomic clocks revisited along these lines, is presented, using both an exact propagator of atom waves in gravito-inertial fields [3] and a covariant Dirac equation in the presence of weak gravitational fields [4]. Using this framework, recoil effects, spin-related effects, beam curvature effects, the sensitivity to gravito-inertial fields and the influence of the coherence of the atom source can be discussed in the context of present and future atomic clocks and gravito-inertial sensors.
引用
收藏
页码:27 / 55
页数:29
相关论文
共 50 条
  • [21] ATOMIC CLOCKS
    LYONS, H
    SCIENTIFIC AMERICAN, 1957, 196 (02) : 71 - 82
  • [22] Effect of environment on the interferometry of clocks
    Verma, Harshit
    Zych, Magdalena
    Costa, Fabio
    QUANTUM, 2021, 5
  • [23] STANDARD CLOCKS, INTERFEROMETRY, AND GRAVITOMAGNETISM
    COHEN, JM
    MASHHOON, B
    PHYSICS LETTERS A, 1993, 181 (05) : 353 - 358
  • [24] Cold atom clocks
    Salomon, C
    Sortais, Y
    Bize, S
    Abgrall, M
    Zhang, S
    Nicolas, C
    Mandache, C
    Lemonde, P
    Laurent, P
    Santarelli, G
    Clairon, A
    Dimarcq, N
    Petit, P
    Mann, A
    Luiten, A
    Chang, S
    ATOMIC PHYSICS 17, 2001, 551 : 23 - 40
  • [25] Cold atom clocks
    Sortais, Y
    Bize, S
    Abgrall, M
    Zhang, S
    Nicolas, C
    Mandache, C
    Lemonde, P
    Laurent, P
    Santarelli, G
    Dimarcq, N
    Petit, P
    Clairon, A
    Mann, A
    Luiten, A
    Chang, S
    Salomon, C
    PHYSICA SCRIPTA, 2001, T95 : 50 - 57
  • [26] An Intense 87Rb Cold Atomic Source for Atom Interferometry
    Li Yingying
    Xiong Jijun
    Jiang Zhikun
    2015 INTERNATIONAL CONFERENCE ON OPTOELECTRONICS AND MICROELECTRONICS (ICOM), 2015, : 30 - 33
  • [27] PRECISION-MEASUREMENT OF THE PHOTON RECOIL OF AN ATOM USING ATOMIC INTERFEROMETRY
    WEISS, DS
    YOUNG, BC
    CHU, S
    PHYSICAL REVIEW LETTERS, 1993, 70 (18) : 2706 - 2709
  • [28] GaN laser diodes for cold-atom quantum sensors and optical atomic clocks
    Najda, S. P.
    Perlin, P.
    Suski, T.
    Stanczyk, S.
    Leszczynski, M.
    Schiavon, D.
    Slight, T.
    Gwyn, S.
    Watson, S.
    Kelly, A. E.
    Knapp, M.
    Haji, M.
    EMERGING IMAGING AND SENSING TECHNOLOGIES FOR SECURITY AND DEFENCE VI, 2021, 11868
  • [29] A Novel Laser Activated Atom Source for Portable Strontium Optical Lattice Atomic Clocks
    Bass, Jonathan
    Aldous, Matthew
    Morris, David
    Singh, Yeshpal
    Jones, Jonathan
    Bongs, Kai
    PROCEEDINGS OF THE 2019 JOINT CONFERENCE OF THE IEEE INTERNATIONAL FREQUENCY CONTROL SYMPOSIUM AND EUROPEAN FREQUENCY AND TIME FORUM (EFTF-IFCS 2019), 2019,
  • [30] Atom interferometry
    Chu, S
    COHERENT ATOMIC MATTER WAVES, 2001, 72 : 319 - 370