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We propose and analyze a Cesium lattice optical clock (CLOC) which has the potential for high performance and simple operation in a compact form factor using a forbidden optical transition in Cs atoms at 685 nm.
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M. Schioppo, R. C. Brown, W. F. McGrew, N. Hinkley, R. J. Fasano, K. Beloy, T. H. Yoon, G. Milani, D. Nicolodi, J. A. Sherman, N. B. Phillips, C. W. Oates, and A. D. Ludlow, “Ultrastable optical clock with two cold-atom ensembles,” Nat. Photon. 11
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2020
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2021
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2021
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2021
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P. Huft, Y. Song, K. Jooya, T. Graham, S. Deshpande, C. Fang, M. Kats, and M. Saffman, “A simplified projected optical trap array,” arXiv:2112.xxxxx (to be submitted Dec. 2021) (2021)
2021
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2021
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2021
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F. Guo, W. Tan, C. h. Zhou, J. Xia, Y. x. Chen, T. Liang, Q. Liu, Y. Liu, D. j. He, Y. z. Zhou, W. h. Wang, Y. Shen, H. x. Zou, and H. Chang, “A proof-of-concept model of compact and high-performance 87
2021
Later among the works it cites.
2021
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P. Huft, Y. Song, K. Jooya, T. Graham, S. Deshpande, C. Fang, M. Kats, and M. Saffman, “A projected optical trap array,” to be published (2022)
2022
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