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The preparation of large, low-entropy, highly coherent ensembles of identical quantum systems is foundational for many studies in quantum metrology, simulation, and information.
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2002
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2006
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2007
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2009
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2010
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C. W. Chou, D. B. Hume, J. C. J. Koelemeij, D. J. Wineland, and T. Rosenband, “Frequency comparison of two high-accuracy Al + \mathrm{Al}^{+} optical clocks,” Physical Review Letters 104
2010
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J. Mitroy and J. Y. Zhang, “Dispersion and polarization interactions of the strontium atom,” Molecular Physics 108
2010
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Masao Takamoto, Tetsushi Takano, and Hidetoshi Katori, “Frequency comparison of optical lattice clocks beyond the Dick limit,” Nature Photonics 5
2011
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C. W. Chou, D. B. Hume, M. J. Thorpe, D. J. Wineland, and T. Rosenband, “Quantum coherence between two atoms beyond Q = 10 15 \mathrm{Q}=10^{15} ,” Physical Review Letters 106
2011
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J. Van Dongen, C. Zhu, D. Clement, G. Dufour, J. L. Booth, and K. W. Madison, “Trap-depth determination from residual gas collisions,” Physical Review A 84
2011
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2012
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A. M. Kaufman, B. J. Lester, and C. A. Regal, “Cooling a single atom in an optical tweezer to its quantum ground state,” Physical Review X 2
2012
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2012
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Kurt Gibble, “Scattering of cold-atom coherences by hot atoms: Frequency shifts from background-gas collisions,” Physical Review Letters 110
2013
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V. D. Ovsiannikov, V. G. Pal’chikov, A. V. Taichenachev, V. I. Yudin, and Hidetoshi Katori, “Multipole, nonlinear, and anharmonic uncertainties of clocks of Sr atoms in an optical lattice,” Physical Review A 88
2013
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I. M. Georgescu, S. Ashhab, and Franco Nori, “Quantum simulation,” Reviews of Modern Physics 86
2014
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L. I. R. Gil, R. Mukherjee, E. M. Bridge, M. P. A. Jones, and T. Pohl, “Spin squeezing in a Rydberg lattice clock,” Phys. Rev. Lett. 112
2014
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E. M. Kessler, P. Kómár, M. Bishof, L. Jiang, A. S. Sørensen, J. Ye, and M. D. Lukin, “Heisenberg-limited atom clocks based on entangled qubits,” Physical Review Letters 112
2014
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A. M. Kaufman, B. J. Lester, C. M. Reynolds, M. L. Wall, M. Foss-Feig, K. R. A. Hazzard, A. M. Rey, and C. A. Regal, “Two-particle quantum interference in tunnel-coupled optical tweezers,” Science 345
2014
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Andrew D. Ludlow, Martin M. Boyd, Jun Ye, E. Peik, and P. O. Schmidt, “Optical atomic clocks,” Reviews of Modern Physics 87
2015
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Ichiro Ushijima, Masao Takamoto, Manoj Das, Takuya Ohkubo, and Hidetoshi Katori, “Cryogenic optical lattice clocks,” Nature Photonics 9
M. O. Brown, T. Thiele, C. Kiehl, T.-W. Hsu, and C. A. Regal, “Gray-molasses optical-tweezer loading: Controlling collisions for scaling atom-array assembly,” Physical Review X 9
2019
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Harry Levine, Alexander Keesling, Giulia Semeghini, Ahmed Omran, Tout T. Wang, Sepehr Ebadi, Hannes Bernien, Markus Greiner, Vladan Vuletić, Hannes Pichler, and Mikhail D. Lukin, “Parallel implementation of high-fidelity multiqubit gates with neutral atoms,” Physical Review Letters 123
2019
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T. M. Graham, M. Kwon, B. Grinkemeyer, Z. Marra, X. Jiang, M. T. Lichtman, Y. Sun, M. Ebert, and M. Saffman, “Rydberg-mediated entanglement in a two-dimensional neutral atom qubit array,” Physical Review Letters 123
2019
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Ahmed Omran, Harry Levine, Alexander Keesling, Giulia Semeghini, Tout T. Wang, Sepehr Ebadi, Hannes Bernien, Alexander S. Zibrov, Hannes Pichler, Soonwon Choi, Jian Cui, Marco Rossignolo, Phila Rembold, Simone Montangero, Tommaso Calarco, Manuel Endres, Markus Greiner, Vladan Vuletić, and Mikhail D. Lukin, “Generation and manipulation of Schrödinger cat states in Rydberg atom arrays,” Science 365
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2015
Cited alongside, same era.
C. Shi, J.-L. Robyr, U. Eismann, M. Zawada, L. Lorini, R. Le Targat, and J. Lodewyck, “Polarizabilities of the Sr 87 {}^{87}\mathrm{Sr} clock transition,” Physical Review A 92
2015
Cited alongside, same era.
Simon Murmann, Andrea Bergschneider, Vincent M. Klinkhamer, Gerhard Zürn, Thomas Lompe, and Selim Jochim, “Two fermions in a double well: Exploring a fundamental building block of the Hubbard model,” Physical Review Letters 114
2015
Cited alongside, same era.
G. Zhang and Z. Song, “Topological characterization of extended quantum Ising models,” Physical Review Letters 115
2015
Cited alongside, same era.
M. S. Safronova, Z. Zuhrianda, U. I. Safronova, and Charles W. Clark, “Extracting transition rates from zero-polarizability spectroscopy,” Physical Review A 92
2015
Cited alongside, same era.
Daniel Barredo, Sylvain de Léséleuc, Vincent Lienhard, Thierry Lahaye, and Antoine Browaeys, “An atom-by-atom assembler of defect-free arbitrary 2d atomic arrays,” Science 354
2016
Cited alongside, same era.
Manuel Endres, Hannes Bernien, Alexander Keesling, Harry Levine, Eric R. Anschuetz, Alexandre Krajenbrink, Crystal Senko, Vladan Vuletic, Markus Greiner, and Mikhail D. Lukin, “Atom-by-atom assembly of defect-free one-dimensional cold atom arrays,” Science 354
2016
Cited alongside, same era.
David B. Hume and David R. Leibrandt, “Probing beyond the laser coherence time in optical clock comparisons,” Physical Review A 93
2016
Cited alongside, same era.
2019
Later among the works it cites.
Sylvain de Léséleuc, Vincent Lienhard, Pascal Scholl, Daniel Barredo, Sebastian Weber, Nicolai Lang, Hans Peter Büchler, Thierry Lahaye, and Antoine Browaeys, “Observation of a symmetry-protected topological phase of interacting bosons with Rydberg atoms,” Science 365
2019
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S. Saskin, J. T. Wilson, B. Grinkemeyer, and J. D. Thompson, “Narrow-line cooling and imaging of ytterbium atoms in an optical tweezer array,” Physical Review Letters 122
2019
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2019
Later among the works it cites.
Ivaylo S. Madjarov, Alexandre Cooper, Adam L. Shaw, Jacob P. Covey, Vladimir Schkolnik, Tai Hyun Yoon, Jason R. Williams, and Manuel Endres, “An atomic-array optical clock with single-atom readout,” Physical Review X 9
2019
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Matthew A. Norcia, Aaron W. Young, William J. Eckner, Eric Oelker, Jun Ye, and Adam M. Kaufman, “Seconds-scale coherence on an optical clock transition in a tweezer array,” Science 366
2019
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S. M. Brewer, J.-S. Chen, A. M. Hankin, E. R. Clements, C. W. Chou, D. J. Wineland, D. B. Hume, and D. R. Leibrandt, “ Al + 27 {}^{27}\mathrm{Al}^{+} quantum-logic clock with a systematic uncertainty below 10 − 18 10^{-18} ,” Physical Review Letters 123
2019
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E. Oelker, R. B. Hutson, C. J. Kennedy, L. Sonderhouse, T. Bothwell, A. Goban, D. Kedar, C. Sanner, J. M. Robinson, G. E. Marti, D. G. Matei, T. Legero, M. Giunta, R. Holzwarth, F. Riehle, U. Sterr, and J. Ye, “Demonstration of 4.8 × 10 − 17 4.8\times 10^{-17} stability at 1 s for two independent optical clocks,” Nature Photonics 13
2019
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Ross B. Hutson, Akihisa Goban, G. Edward Marti, and Jun Ye, “Engineering quantum states of matter for atomic clocks in shallow optical lattices,” Physical Review Letters 123
2019
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Raphael Kaubruegger, Pietro Silvi, Christian Kokail, Rick van Bijnen, Ana Maria Rey, Jun Ye, Adam M. Kaufman, and Peter Zoller, “Variational spin-squeezing algorithms on programmable quantum sensors,” Physical Review Letters 123
2019
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L. R. Liu, J. D. Hood, Y. Yu, J. T. Zhang, K. Wang, Y.-W. Lin, T. Rosenband, and K.-K. Ni, “Molecular assembly of ground-state cooled single atoms,” Physical Review X 9
2019
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T. R. Tan, R. Kaewuam, K. J. Arnold, S. R. Chanu, Zhiqiang Zhang, M. S. Safronova, and M. D. Barrett, “Suppressing Inhomogeneous Broadening in a Lutetium Multi-ion Optical Clock,” Physical Review Letters 123
2019
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Jacob P. Covey, Ivaylo S. Madjarov, Alexandre Cooper, and Manuel Endres, “2000-times repeated imaging of strontium atoms in clock-magic tweezer arrays,” Physical Review Letters 122
2019
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Paraj Titum, Joseph T. Iosue, James R. Garrison, Alexey V. Gorshkov, and Zhe-Xuan Gong, “Probing ground-state phase transitions through quench dynamics,” Physical Review Letters 123
2019
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Tobias Bothwell, Dhruv Kedar, Eric Oelker, John M. Robinson, Sarah L. Bromley, Weston L. Tew, Jun Ye, and Colin J. Kennedy, “ JILA SrI
2019
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Antoine Browaeys and Thierry Lahaye, “Many-body physics with individually controlled Rydberg atoms,” Nature Physics 16
2020
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Ivaylo S. Madjarov, Jacob P. Covey, Adam L. Shaw, Joonhee Choi, Anant Kale, Alexandre Cooper, Hannes Pichler, Vladimir Schkolnik, Jason R. Williams, and Manuel Endres, “High-fidelity entanglement and detection of alkaline-earth Rydberg atoms,” Nature Physics , 1–5 (2020)
2020
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