Frequency Ratio of Al + and Hg + Single-Ion Optical Clocks; Metrology at the 17th Decimal Place
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Open Access
- 28 March 2008
- journal article
- other
- Published by American Association for the Advancement of Science (AAAS) in Science
- Vol. 319 (5871), 1808-1812
- https://doi.org/10.1126/science.1154622
Abstract
Time has always had a special status in physics because of its fundamental role in specifying the regularities of nature and because of the extraordinary precision with which it can be measured. This precision enables tests of fundamental physics and cosmology, as well as practical applications such as satellite navigation. Recently, a regime of operation for atomic clocks based on optical transitions has become possible, promising even higher performance. We report the frequency ratio of two optical atomic clocks with a fractional uncertainty of 5.2 × 10–17. The ratio of aluminum and mercury single-ion optical clock frequencies νAl+/νHg+ is 1.052871833148990438(55), where the uncertainty comprises a statistical measurement uncertainty of 4.3 × 10–17, and systematic uncertainties of 1.9 × 10–17 and 2.3 × 10–17 in the mercury and aluminum frequency standards, respectively. Repeated measurements during the past year yield a preliminary constraint on the temporal variation of the fine-structure constant α of .Keywords
This publication has 30 references indexed in Scilit:
- Observation of theClock Transition inPhysical Review Letters, 2007
- Nobel Lecture: Defining and measuring optical frequenciesReviews of Modern Physics, 2006
- Relativistic effects in two valence-electron atoms and ions and the search for variation of the fine-structure constantPhysical Review A, 2004
- Optical Frequency Synthesis and Comparison with Uncertainty at the 10 -19 LevelScience, 2004
- The relativistic redshift with 3 10 17uncertainty at NIST, Boulder, Colorado, USAMetrologia, 2003
- External-field shifts of the 199-Hg(+) optical frequency standardJournal of Research of the National Institute of Standards and Technology, 2000
- Heating of trapped ions from the quantum ground statePhysical Review A, 2000
- Visible Lasers with Subhertz LinewidthsPhysical Review Letters, 1999
- Laser stabilization at the millihertz levelJournal of the Optical Society of America B, 1988
- Recoilless optical absorption and Doppler sidebands of a single trapped ionPhysical Review A, 1987