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The control over quantum states in atomic systems has led to the most precise optical atomic clocks to date.
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2016
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2021
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2021
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2021
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2017
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2017
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2018
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2018
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2018
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2018
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2019
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M. Tse et al. , “Quantum-enhanced advanced LIGO detectors in the era of gravitational-wave astronomy,” Phys. Rev. Lett. 123
2019
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Raphael Kaubruegger, Denis V. Vasilyev, Marius Schulte, Klemens Hammerer, and Peter Zoller, “Quantum variational optimization of Ramsey interferometry and atomic clocks,” Phys. Rev. X 11
2021
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2022
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2022
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2022
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2022
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F. Kranzl, M. K. Joshi, C. Maier, T. Brydges, J. Franke, R. Blatt, and C. F. Roos, “Controlling long ion strings for quantum simulation and precision measurements,” Phys. Rev. A 105
2022
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2022
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Simone Colombo, Edwin Pedrozo-Peñafiel, Albert F. Adiyatullin, Zeyang Li, Enrique Mendez, Chi Shu, and Vladan Vuletić, “Time-reversal-based quantum metrology with many-body entangled states,” Nat. Phys. 18
2022
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M. K. Joshi, F. Kranzl, A. Schuckert, I. Lovas, C. Maier, R. Blatt, M. Knap, and C. F. Roos, “Observing emergent hydrodynamics in a long-range quantum magnet,” Science 376
2022
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Julian Huber, Ana Maria Rey, and Peter Rabl, “Realistic simulations of spin squeezing and cooperative coupling effects in large ensembles of interacting two-level systems,” Phys. Rev. A 105
2022
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2022
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Jeremy T. Young, Sean R. Muleady, Michael A. Perlin, Adam M. Kaufman, and Ana Maria Rey, “Enhancing spin squeezing using soft-core interactions,” Phys. Rev. Res. 5
2023
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2023
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2023
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2023
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2023
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