Literature DB >> 33299197

Operation of an optical atomic clock with a Brillouin laser subsystem.

William Loh1, Jules Stuart2,3, David Reens2, Colin D Bruzewicz2, Danielle Braje2, John Chiaverini2, Paul W Juodawlkis2, Jeremy M Sage2,3, Robert McConnell2.   

Abstract

Microwave atomic clocks have traditionally served as the 'gold standard' for precision measurements of time and frequency. However, over the past decade, optical atomic clocks1-6 have surpassed the precision of their microwave counterparts by two orders of magnitude or more. Extant optical clocks occupy volumes of more than one cubic metre, and it is a substantial challenge to enable these clocks to operate in field environments, which requires the ruggedization and miniaturization of the atomic reference and clock laser along with their supporting lasers and electronics4,7,8,9. In terms of the clock laser, prior laboratory demonstrations of optical clocks have relied on the exceptional performance gained through stabilization using bulk cavities, which unfortunately necessitates the use of vacuum and also renders the laser susceptible to vibration-induced noise. Here, using a stimulated Brillouin scattering laser subsystem that has a reduced cavity volume and operates without vacuum, we demonstrate a promising component of a portable optical atomic clock architecture. We interrogate a 88Sr+ ion with our stimulated Brillouin scattering laser and achieve a clock exhibiting short-term stability of 3.9 × 10-14 over one second-an improvement of an order of magnitude over state-of-the-art microwave clocks. This performance increase within a potentially portable system presents a compelling avenue for substantially improving existing technology, such as the global positioning system, and also for enabling the exploration of topics such as geodetic measurements of the Earth, searches for dark matter and investigations into possible long-term variations of fundamental physics constants10-12.

Year:  2020        PMID: 33299197     DOI: 10.1038/s41586-020-2981-6

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  29 in total

1.  Brillouin lasing with a CaF2 whispering gallery mode resonator.

Authors:  Ivan S Grudinin; Andrey B Matsko; Lute Maleki
Journal:  Phys Rev Lett       Date:  2009-01-28       Impact factor: 9.161

2.  An atomic clock with 10(-18) instability.

Authors:  N Hinkley; J A Sherman; N B Phillips; M Schioppo; N D Lemke; K Beloy; M Pizzocaro; C W Oates; A D Ludlow
Journal:  Science       Date:  2013-08-22       Impact factor: 47.728

3.  Field-test of a robust, portable, frequency-stable laser.

Authors:  David R Leibrandt; Michael J Thorpe; James C Bergquist; Till Rosenband
Journal:  Opt Express       Date:  2011-05-23       Impact factor: 3.894

4.  Frequency ratio of two optical clock transitions in 171Yb+ and constraints on the time variation of fundamental constants.

Authors:  R M Godun; P B R Nisbet-Jones; J M Jones; S A King; L A M Johnson; H S Margolis; K Szymaniec; S N Lea; K Bongs; P Gill
Journal:  Phys Rev Lett       Date:  2014-11-17       Impact factor: 9.161

5.  Compact, thermal-noise-limited reference cavity for ultra-low-noise microwave generation.

Authors:  J Davila-Rodriguez; F N Baynes; A D Ludlow; T M Fortier; H Leopardi; S A Diddams; F Quinlan
Journal:  Opt Lett       Date:  2017-04-01       Impact factor: 3.776

6.  Transportable Optical Lattice Clock with 7×10^{-17} Uncertainty.

Authors:  S B Koller; J Grotti; St Vogt; A Al-Masoudi; S Dörscher; S Häfner; U Sterr; Ch Lisdat
Journal:  Phys Rev Lett       Date:  2017-02-13       Impact factor: 9.161

7.  Atomic clock performance enabling geodesy below the centimetre level.

Authors:  W F McGrew; X Zhang; R J Fasano; S A Schäffer; K Beloy; D Nicolodi; R C Brown; N Hinkley; G Milani; M Schioppo; T H Yoon; A D Ludlow
Journal:  Nature       Date:  2018-11-28       Impact factor: 49.962

8.  Ultracompact reference ultralow expansion glass cavity.

Authors:  Alexandre Didier; Jacques Millo; Baptiste Marechal; Cyrus Rocher; Enrico Rubiola; Roméo Lecomte; Morvan Ouisse; Jérôme Delporte; Clément Lacroûte; Yann Kersalé
Journal:  Appl Opt       Date:  2018-08-01       Impact factor: 1.980

9.  Single-Ion Atomic Clock with 3×10(-18) Systematic Uncertainty.

Authors:  N Huntemann; C Sanner; B Lipphardt; Chr Tamm; E Peik
Journal:  Phys Rev Lett       Date:  2016-02-08       Impact factor: 9.161

10.  In-orbit operation of an atomic clock based on laser-cooled 87Rb atoms.

Authors:  Liang Liu; De-Sheng Lü; Wei-Biao Chen; Tang Li; Qiu-Zhi Qu; Bin Wang; Lin Li; Wei Ren; Zuo-Ren Dong; Jian-Bo Zhao; Wen-Bing Xia; Xin Zhao; Jing-Wei Ji; Mei-Feng Ye; Yan-Guang Sun; Yuan-Yuan Yao; Dan Song; Zhao-Gang Liang; Shan-Jiang Hu; Dun-He Yu; Xia Hou; Wei Shi; Hua-Guo Zang; Jing-Feng Xiang; Xiang-Kai Peng; Yu-Zhu Wang
Journal:  Nat Commun       Date:  2018-07-24       Impact factor: 14.919

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  3 in total

1.  Large evanescently-induced Brillouin scattering at the surrounding of a nanofibre.

Authors:  Fan Yang; Flavien Gyger; Adrien Godet; Jacques Chrétien; Li Zhang; Meng Pang; Jean-Charles Beugnot; Luc Thévenaz
Journal:  Nat Commun       Date:  2022-03-17       Impact factor: 14.919

2.  Frequency comb-to-comb stabilization over a 1.3-km free-space atmospheric optical link.

Authors:  Jaewon Yang; Dong Il Lee; Dong-Chel Shin; Jaehyun Lee; Byung Soo Kim; Hyun Jay Kang; Young-Jin Kim; Seung-Woo Kim
Journal:  Light Sci Appl       Date:  2022-08-12       Impact factor: 20.257

3.  Visible light photonic integrated Brillouin laser.

Authors:  Nitesh Chauhan; Andrei Isichenko; Kaikai Liu; Jiawei Wang; Qiancheng Zhao; Ryan O Behunin; Peter T Rakich; Andrew M Jayich; C Fertig; C W Hoyt; Daniel J Blumenthal
Journal:  Nat Commun       Date:  2021-08-03       Impact factor: 14.919

  3 in total

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