• Chinese Journal of Quantum Electronics
  • Vol. 36, Issue 3, 299 (2019)
TAOBinkai 1、2、* and Qunfeng CHEN1
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • show less
    DOI: 10.3969/j.issn.1007-5461.2019.03.007 Cite this Article
    TAOBinkai, CHEN Qunfeng. Transportable 30 cm optical cavity[J]. Chinese Journal of Quantum Electronics, 2019, 36(3): 299 Copy Citation Text show less
    References

    [1] Salomon C, Hils D, Hall J L. Laser stabilization at the millihertz level [J]. Journal of the Optical Society of America B, 1998, 5(8): 1576-1587.

    [4] Haefner S, Falke S, Grebing C, et al. 8 × 10 -17 fractional laser frequency instability with a long room-temperature cavity [J]. Optics Letters, 2015, 40(9): 2112-2115.

    [5] Matei D G, Legero T, Hafner S, et al. 1.5 μ m lasers with sub-10 mHz linewidth [J]. Physical Review Letters, 2017, 118(26): 263202.

    [6] Bloom B J, Nicholson T L, Williams J R, et al. An optical lattice clock with accuracy and stability at the 10 -18 level [J]. Nature, 2014, 50(7486): 71-75.

    [7] Ludlow A D, Boyd M M, Ye J, et al. Optical atomic clocks [J]. Reviews of Modern Physics, 2015, 87(2): 637-701.

    [8] Huntemann N, Sanner C, Lipphardt B, et al. Single-ion atomic clock with 3 × 10 -18 systematic uncertainty [J]. Physical Review Letters, 2016, 11(6): 063001.

    [9] Huang Y, Guan H, Liu P, et al. Frequency comparison of two 40 Ca + optical clocks with an uncertainty at the 10 -17 level [J]. Physical Review Letters, 2016, 11(1): 013001.

    [10] Hutson R, Campbell S, Marti E, et al. A Fermi-degenerate three-dimensional optical lattice clock [J]. Science, 2017, 358(6359): 90-94.

    [11] Eisele C, Nevsky A Y, Schiller S. Laboratory test of the isotropy of light propagation at the 10 -17 level [J]. Physical Review Letters, 2009, 103(9): 090401.

    [12] Chen Q, Magoulakis E, Schiller S. High-sensitivity crossed-resonator laser apparatus for improved tests of Lorentz invariance and of space-time fluctuations [J]. Physical Review D, 2016, 93(2): 022003.

    [13] Hees A, Guena J, Abgrall M, et al. Searching for an oscillating massive scalar field as a dark matter candidate using atomic hyperfine frequency comparisons [J]. Physical Review Letters, 2016, 117(6): 061301.

    [14] Roberts B M, Blewitt G, Dailey C, et al. Search for domain wall dark matter with atomic clocks on board global positioning system satellites [J]. Nature Communications, 2017, 8(1): 1195.

    [15] Adhikari R X. Gravitational radiation detection with laser interferometry [J]. Reviews of Modern Physics, 2014, 8(1): 121-151.

    [16] Abbott B P, et al. Observation of gravitational waves from a binary black hole merger [J]. Physical Review Letters, 2016, 11(6): 061102.

    [17] Koller S B, Grotti J, Vogt S, et al. Transportable optical lattice clock with 7 × 10 -17 uncertainty [J]. Physical Review Letters, 2017, 118(7): 073601.

    [18] Cao J, Zhang P, Shang J, et al. A compact, transportable single-ion optical clock with 7.8 × 10 -17 systematic uncertainty [J]. Applied Physics B, 2017, 123(4): 112.

    [19] Chen L, Hall J L, Ye J, et al. Vibration-induced elastic deformation of Fabry-Perot cavities [J]. Physical Review A, 2006, 30(5): 053801.

    [20] Millo J, et al. Ultrastable lasers based on vibration insensitive cavities [J]. Physical Review A, 2009, 79(5): 053829.

    [21] Webster S, Gill P. Force-insensitive optical cavity [J]. Optics Letters, 2011, 3(18): 1539-4794.

    [22] Leibrandt D R, Thorpe M J, Notcutt M, et al. Spherical reference cavities for frequency stabilization of lasers in non-laboratory environments [J]. Optics Express, 2011, 19(4): 1094-4087.

    [23] Chen Q F, Nevsky A, Cardace M, et al. A compact, robust, and transportable ultra-stable laser with a fractional frequency instability of 1 × 10 -15 [J]. Review of Scientific Instruments, 2014, 85(11): 113107.

    [24] Kessler T, Legero T, Sterr U. Tuning the thermal expansion properties of optical reference cavities with fused silica mirrors [J]. Journal of the Optical Society of America B, 2010, 27(5): 914-919.

    [25] Numata K, Kemery A, Camp J. Thermal-noise limit in the frequency stabilization of lasers with rigid cavities [J]. Physical Review Letters, 2004, 93(25): 250602.

    TAOBinkai, CHEN Qunfeng. Transportable 30 cm optical cavity[J]. Chinese Journal of Quantum Electronics, 2019, 36(3): 299
    Download Citation