Demonstration of a trapped-ion atomic clock in space

被引:0
|
作者
E. A. Burt
J. D. Prestage
R. L. Tjoelker
D. G. Enzer
D. Kuang
D. W. Murphy
D. E. Robison
J. M. Seubert
R. T. Wang
T. A. Ely
机构
[1] California Institute of Technology,Jet Propulsion Laboratory
来源
Nature | 2021年 / 595卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Atomic clocks, which lock the frequency of an oscillator to the extremely stable quantized energy levels of atoms, are essential for navigation applications such as deep space exploration1 and global navigation satellite systems2, and are useful tools with which to address questions in fundamental physics3–6. Such satellite systems use precise measurement of signal propagation times determined by atomic clocks, together with propagation speed, to calculate position. Although space atomic clocks with low instability are an enabling technology for global navigation, they have not yet been applied to deep space navigation and have seen only limited application to space-based fundamental physics, owing to performance constraints imposed by the rigours of space operation7. Methods of electromagnetically trapping and cooling ions have revolutionized atomic clock performance8–13. Terrestrial trapped-ion clocks operating in the optical domain have achieved orders-of-magnitude improvements in performance over their predecessors and have become a key component in national metrology laboratory research programmes13, but transporting this new technology into space has remained challenging. Here we show the results from a trapped-ion atomic clock operating in space. On the ground, NASA’s Deep Space Atomic Clock demonstrated a short-term fractional frequency stability of 1.5 × 10−13/τ1/2 (where τ is the averaging time)14. Launched in 2019, the clock has operated for more than 12 months in space and demonstrated there a long-term stability of 3 × 10−15 at 23 days (no drift removal), and an estimated drift of 3.0(0.7) × 10−16 per day. Each of these exceeds current space clock performance by up to an order of magnitude15–17. The Deep Space Atomic Clock is particularly amenable to the space environment because of its low sensitivity to variations in radiation, temperature and magnetic fields. This level of space clock performance will enable one-way navigation in which signal delay times are measured in situ, making near-real-time navigation of deep space probes possible18.
引用
收藏
页码:43 / 47
页数:4
相关论文
共 50 条
  • [1] Demonstration of a trapped-ion atomic clock in space
    Burt, E. A.
    Prestage, J. D.
    Tjoelker, R. L.
    Enzer, D. G.
    Kuang, D.
    Murphy, D. W.
    Robison, D. E.
    Seubert, J. M.
    Wang, R. T.
    Ely, T. A.
    NATURE, 2021, 595 (7865) : 43 - +
  • [2] A trapped ion atomic clock in space
    Georgescu, Iulia
    NATURE REVIEWS PHYSICS, 2021, 3 (07) : 460 - 460
  • [3] A trapped ion atomic clock in space
    Iulia Georgescu
    Nature Reviews Physics, 2021, 3 : 460 - 460
  • [4] Entanglement of trapped-ion clock states
    Haljan, PC
    Lee, PJ
    Brickman, KA
    Acton, M
    Deslauriers, L
    Monroe, C
    PHYSICAL REVIEW A, 2005, 72 (06):
  • [5] The collisional frequency shift of a trapped-ion optical clock
    Vutha, Amar C.
    Kirchnert, Tom
    Dube, Pierre
    2017 JOINT CONFERENCE OF THE EUROPEAN FREQUENCY AND TIME FORUM AND IEEE INTERNATIONAL FREQUENCY CONTROL SYMPOSIUM (EFTF/IFC), 2017, : 153 - 153
  • [6] Collisional frequency shift of a trapped-ion optical clock
    Vutha, Amar C.
    Kirchner, Tom
    Dube, Pierre
    PHYSICAL REVIEW A, 2017, 96 (02)
  • [7] Demonstration of the trapped-ion quantum CCD computer architecture
    J. M. Pino
    J. M. Dreiling
    C. Figgatt
    J. P. Gaebler
    S. A. Moses
    M. S. Allman
    C. H. Baldwin
    M. Foss-Feig
    D. Hayes
    K. Mayer
    C. Ryan-Anderson
    B. Neyenhuis
    Nature, 2021, 592 : 209 - 213
  • [8] Demonstration of Shor Encoding on a Trapped-Ion Quantum Computer
    Nguyen, Nhung H.
    Li, Muyuan
    Green, Alaina M.
    Alderete, C. Huerta
    Zhu, Yingyue
    Zhu, Daiwei
    Brown, Kenneth R.
    Linke, Norbert M.
    PHYSICAL REVIEW APPLIED, 2021, 16 (02):
  • [9] Demonstration of the trapped-ion quantum CCD computer architecture
    Pino, J. M.
    Dreiling, J. M.
    Figgatt, C.
    Gaebler, J. P.
    Moses, S. A.
    Allman, M. S.
    Baldwin, C. H.
    Foss-Feig, M.
    Hayes, D.
    Mayer, K.
    Ryan-Anderson, C.
    Neyenhuis, B.
    NATURE, 2021, 592 (7853) : 209 - +
  • [10] Trapped-ion optical atomic clocks at the quantum limits
    Leibrandt, David R.
    Brewer, Samuel M.
    Chen, Jwo-Sy
    Chou, Chin-Wen
    Hankin, Aaron M.
    Hume, David B.
    Wineland, David J.
    PROCEEDINGS OF THE 48TH ANNUAL PRECISE TIME AND TIME INTERVAL SYSTEMS AND APPLICATIONS MEETING, 2017, : 48 - 52