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Tackling the Blackbody Shift in a Strontium Optical Lattice Clock.

, , , , , and . IEEE Trans. Instrumentation and Measurement, 60 (7): 2550-2557 (2011)

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A novel stabilization method for an optical frequency comb generator., , , and . IEEE Trans. Instrumentation and Measurement, 48 (2): 574-577 (1999)The Stability of an Optical Clock Laser Transferred to the Interrogation Oscillator for a Cs Fountain., , , , , and . IEEE Trans. Instrumentation and Measurement, 58 (4): 1258-1262 (2009)Optical frequency standard based on cold Ca atoms., , , , , , and . IEEE Trans. Instrumentation and Measurement, 52 (2): 250-254 (2003)Optical frequency measurements using fs-comb generators., , , , , , and . IEEE Trans. Instrumentation and Measurement, 54 (2): 750-753 (2005)Influence of chirped excitation pulses in an optical clock with ultracold calcium atoms., , , , , and . IEEE Trans. Instrumentation and Measurement, 54 (2): 771-775 (2005)Tackling the Blackbody Shift in a Strontium Optical Lattice Clock., , , , , and . IEEE Trans. Instrumentation and Measurement, 60 (7): 2550-2557 (2011)Providing 10-16 Short-Term Stability of a 1.5-µm Laser to Optical Clocks., , , , , , , , and . IEEE Trans. Instrum. Meas., 62 (6): 1556-1562 (2013)Interrogation Laser for a Strontium Lattice Clock., , , , , , and . IEEE Trans. Instrumentation and Measurement, 58 (4): 1252-1257 (2009)Dynamic decoupling of laser phase noise in compound atomic clocks, , , , , , and . (2019)cite arxiv:1911.13146Comment: 14 pages, 4 figures.