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Rapid progress in the precision and accuracy of optical atomic clocks over the last decade has advanced the frontiers of timekeeping, metrology, and quantum science.
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“Isotope shifts in atomic spectra”
W.. King · 1984
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G.. Dick · 1987
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“Local oscillator induced instabilities in trapped ion frequency standards”
G.. Dick · 1987
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G.. Dick, J.. Prestage, C.. Greenhall and L. Maleki · 1990
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“Local oscillator induced degradation of medium-term stability in passive atomic frequency standards”
G.. Dick, J.. Prestage, C.. Greenhall and L. Maleki · 1990
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“Squeezed spin states”
M. Kitagawa and M. Ueda · 1993
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“Quantum projection noise: population fluctuations in two-level systems”
W.. Itano et al · 1993
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“Squeezed spin states”
M. Kitagawa and M. Ueda · 1993
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R. Halir and J. Flusser · 1998
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R. Halir and J. Flusser · 1998
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“Spin squeezing of atoms by the dipole interaction in virtually excited Rydberg states”
I. Bouchoule and K. Mølmer · 2002
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“Spin squeezing of atoms by the dipole interaction in virtually excited Rydberg states”
I. Bouchoule and K. Mølmer · 2002
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“Optical lattice clock with atoms confined in a shallow trap”
P. Lemonde and P. Wolf · 2005
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“Optical lattice clock with atoms confined in a shallow trap”
P. Lemonde and P. Wolf · 2005
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“Magnetic field-induced spectroscopy of forbidden optical transitions with application to lattice-based optical atomic clocks”
A.. Taichenachev et al · 2006
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“Magnetic field-induced spectroscopy of forbidden optical transitions with application to lattice-based optical atomic clocks”
A.. Taichenachev et al · 2006
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“Nuclear spin effects in optical lattice clocks”
M.. Boyd et al · 2007
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“High precision spectroscopy of strontium in an optical lattice: towards a new standard for frequency and time”
M.. Boyd · 2007
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“Nuclear spin effects in optical lattice clocks”
M.. Boyd et al · 2007
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“High precision spectroscopy of strontium in an optical lattice: towards a new standard for frequency and time”
M.. Boyd · 2007
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“The absolute frequency of the 87
G.. Campbell et al · 2008
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“The absolute frequency of the 87
G.. Campbell et al · 2008
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“Rabi spectroscopy and excitation inhomogeneity in a one-dimensional optical lattice clock”
S. Blatt et al · 2009
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“Rabi spectroscopy and excitation inhomogeneity in a one-dimensional optical lattice clock”
S. Blatt et al · 2009
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“Optical clocks and relativity”
C.. Chou, D.. Hume, T. Rosenband and D.. Wineland · 2010
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“Optical clocks and relativity”
C.. Chou, D.. Hume, T. Rosenband and D.. Wineland · 2010
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“Suppression of collisional shifts in a strongly interacting lattice clock”
M.. Swallows et al · 2011
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“Lattice-induced frequency shifts in Sr optical lattice clocks at the 10 − 17 10^{-17} level”
P.. Westergaard et al · 2011
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“Suppression of collisional shifts in a strongly interacting lattice clock”
M.. Swallows et al · 2011
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“Lattice-induced frequency shifts in Sr optical lattice clocks at the 10 − 17 10^{-17} level”
P.. Westergaard et al · 2011
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“Comparison of two independent Sr optical clocks with 1 × 10 − 17 1\times 10^{-17} stability at 10 3 10^{3} s”
T.. Nicholson et al · 2012
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“Operating a 87
M.. Swallows et al · 2012
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“Comparison of two independent Sr optical clocks with 1 × 10 − 17 1\times 10^{-17} stability at 10 3 10^{3} s”
T.. Nicholson et al · 2012
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“Operating a 87
M.. Swallows et al · 2012
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“An atomic clock with 10 − 18 10^{-18} instability”
N. Hinkley et al · 2013
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“A quantum many-body spin system in an optical lattice clock”
M.. Martin et al · 2013
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“An atomic clock with 10 − 18 10^{-18} instability”
N. Hinkley et al · 2013
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“A quantum many-body spin system in an optical lattice clock”
M.. Martin et al · 2013
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“Hunting for topological dark matter with atomic clocks”
A. Derevianko and M. Pospelov · 2014
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“An optical lattice clock with accuracy and stability at the 10 − 18 10^{-18} level”
B.. Bloom et al · 2014
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“Spin squeezing in a Rydberg lattice clock”
L… Gil et al · 2014
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“Degenerate quantum gases of strontium”
S. Stellmer · 2014
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“Hunting for topological dark matter with atomic clocks”
A. Derevianko and M. Pospelov · 2014
Cited alongside, same era.
“An optical lattice clock with accuracy and stability at the 10 − 18 10^{-18} level”
B.. Bloom et al · 2014
Cited alongside, same era.
“Spin squeezing in a Rydberg lattice clock”
L… Gil et al · 2014
Cited alongside, same era.
“Degenerate quantum gases of strontium”
S. Stellmer · 2014
Cited alongside, same era.
“Optical atomic clocks”
A.. Ludlow et al · 2015
Cited alongside, same era.
“Searching for dilaton dark matter with atomic clocks”
A. Arvanitaki, J.. Huang and K. Van · 2015
Cited alongside, same era.
“Faraday-shielded dc stark-shift-free optical lattice clock”
K. Beloy et al · 2018
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“Probing new long-range interactions by isotope shift spectroscopy”
J.. Berengut et al · 2018
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“Isotope shift, non-linearity of King plots and the search for new particles”
V.. Flambaum, A.. Geddes and A.. Viatkina · 2018
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“Operational magic intensity for Sr optical lattice clocks”
I. Ushijima, M. Takamoto and H. Katori · 2018
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“Demonstration of 4.8 × 10 − 17 4.8\times 10^{-17} stability at 1 s for two independent optical clocks”
E. Oelker et al · 2019
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“JILA SrI optical lattice clock with uncertainty of 2.0 × 10 − 18 2.0\times 10^{-18} ”
T. Bothwell et al · 2019
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T.. Nicholson et al · 2015
Cited alongside, same era.
“Optical atomic clocks”
A.. Ludlow et al · 2015
Cited alongside, same era.
“Searching for dilaton dark matter with atomic clocks”
A. Arvanitaki, J.. Huang and K. Van · 2015
Cited alongside, same era.
“Systematic evaluation of an atomic clock at 2 × 10 − 18 2\times 10^{-18} total uncertainty”
T.. Nicholson et al · 2015
Cited alongside, same era.
“Ultrastable optical clock with two cold-atom ensembles”
M. Schioppo et al · 2016
Cited alongside, same era.
“Gravitational wave detection with optical lattice atomic clocks”
S. Kolkowitz et al · 2016
Cited alongside, same era.
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“Engineering quantum states of matter for atomic clocks in shallow optical lattices”
R.. Hutson et al · 2019
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“Crystalline optical cavity at 4 K with thermal-noise-limited instability and ultralow drift”
J.. Robinson et al · 2019
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“Demonstration of a timescale based on a stable optical carrier”
W.. Milner et al · 2019
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“Seconds-scale coherence on an optical clock transition in a tweezer array”
M.. Norcia et al · 2019
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“An atomic-array optical clock with single-atom readout”
I.. Madjarov et al · 2019
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“JILA SrI optical lattice clock with uncertainty of 2.0 × 10 − 18 2.0\times 10^{-18} ”
T. Bothwell et al · 2019
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“Demonstration of 4.8 × 10 − 17 4.8\times 10^{-17} stability at 1 s for two independent optical clocks”
E. Oelker et al · 2019
Later among the works it cites.
“JILA SrI optical lattice clock with uncertainty of 2.0 × 10 − 18 2.0\times 10^{-18} ”
T. Bothwell et al · 2019
Later among the works it cites.
“Engineering quantum states of matter for atomic clocks in shallow optical lattices”
R.. Hutson et al · 2019
Later among the works it cites.
“Crystalline optical cavity at 4 K with thermal-noise-limited instability and ultralow drift”
J.. Robinson et al · 2019
Later among the works it cites.
“Demonstration of a timescale based on a stable optical carrier”
W.. Milner et al · 2019
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“Seconds-scale coherence on an optical clock transition in a tweezer array”
M.. Norcia et al · 2019
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“An atomic-array optical clock with single-atom readout”
I.. Madjarov et al · 2019
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“JILA SrI optical lattice clock with uncertainty of 2.0 × 10 − 18 2.0\times 10^{-18} ”
T. Bothwell et al · 2019
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“Precision metrology meets cosmology: improved constraints on ultralight dark matter from atom-cavity frequency comparisons”
C.. Kennedy et al · 2020
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“Test of general relativity by a pair of transportable optical lattice clocks”
M. Takamoto et al · 2020
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“Lifetime-limited interrogation of two independent 27
E.. Clements et al · 2020
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“Half-minute-scale atomic coherence and high relative stability in a tweezer clock”
A.. Young et al · 2020
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“Evidence for nonlinear isotope shift in Yb + search for new Boson”
I. Counts et al · 2020
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“Entanglement on an optical atomic-clock transition”
E. Pedrozo-Peñafiel et al · 2020
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“Precision metrology meets cosmology: improved constraints on ultralight dark matter from atom-cavity frequency comparisons”
C.. Kennedy et al · 2020
Later among the works it cites.
“Test of general relativity by a pair of transportable optical lattice clocks”
M. Takamoto et al · 2020
Later among the works it cites.
“Lifetime-limited interrogation of two independent 27
E.. Clements et al · 2020
Later among the works it cites.
“Half-minute-scale atomic coherence and high relative stability in a tweezer clock”
A.. Young et al · 2020
Later among the works it cites.
“Evidence for nonlinear isotope shift in Yb + search for new Boson”
I. Counts et al · 2020
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“Entanglement on an optical atomic-clock transition”
E. Pedrozo-Peñafiel et al · 2020
Later among the works it cites.
“Frequency ratio measurements at 18-digit accuracy using an optical clock network”
Boulder(BACON) Collaboration* · 2021
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“Measurement of the 27
H. Leopardi et al · 2021
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“Demonstration of a trapped-ion atomic clock in space”
E.. Burt et al · 2021
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M.. Kim et al · 2021
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“Impacts of random filling on spin squeezing via Rydberg dressing in optical clocks”
J. Van et al · 2021
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“Resolving the gravitational redshift within a millimeter atomic sample”
T. Bothwell et al · 2021
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“Frequency ratio measurements at 18-digit accuracy using an optical clock network”
Boulder(BACON) Collaboration* · 2021
Closest in time.
“Measurement of the 27
H. Leopardi et al · 2021
Closest in time.
“Demonstration of a trapped-ion atomic clock in space”
E.. Burt et al · 2021
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M.. Kim et al · 2021
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“Impacts of random filling on spin squeezing via Rydberg dressing in optical clocks”
J. Van et al · 2021
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“Resolving the gravitational redshift within a millimeter atomic sample”
T. Bothwell et al · 2021
Closest in time.