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Optical clocks based on the Cf15+ and Cf17+ ions. / Porsev, S. G.; Safronova, U. I.; Safronova, M. S.; Schmidt, P. O.; Bondarev, A. I.; Kozlov, M. G.; Tupitsyn, I. I.; Cheung, C.

In: Physical Review A, Vol. 102, No. 1, 012802, 07.2020.

Research output: Contribution to journalArticlepeer-review

Harvard

Porsev, SG, Safronova, UI, Safronova, MS, Schmidt, PO, Bondarev, AI, Kozlov, MG, Tupitsyn, II & Cheung, C 2020, 'Optical clocks based on the Cf15+ and Cf17+ ions', Physical Review A, vol. 102, no. 1, 012802. https://doi.org/10.1103/PhysRevA.102.012802

APA

Porsev, S. G., Safronova, U. I., Safronova, M. S., Schmidt, P. O., Bondarev, A. I., Kozlov, M. G., Tupitsyn, I. I., & Cheung, C. (2020). Optical clocks based on the Cf15+ and Cf17+ ions. Physical Review A, 102(1), [012802]. https://doi.org/10.1103/PhysRevA.102.012802

Vancouver

Porsev SG, Safronova UI, Safronova MS, Schmidt PO, Bondarev AI, Kozlov MG et al. Optical clocks based on the Cf15+ and Cf17+ ions. Physical Review A. 2020 Jul;102(1). 012802. https://doi.org/10.1103/PhysRevA.102.012802

Author

Porsev, S. G. ; Safronova, U. I. ; Safronova, M. S. ; Schmidt, P. O. ; Bondarev, A. I. ; Kozlov, M. G. ; Tupitsyn, I. I. ; Cheung, C. / Optical clocks based on the Cf15+ and Cf17+ ions. In: Physical Review A. 2020 ; Vol. 102, No. 1.

BibTeX

@article{54081a0b188d4f4cbf50155cea92c4bc,
title = "Optical clocks based on the Cf15+ and Cf17+ ions",
abstract = "Recent experimental progress in cooling, trapping, and quantum logic spectroscopy of highly charged ions (HCIs) made HCIs accessible for high-resolution spectroscopy and precision fundamental studies. Based on these achievements, we explore a possibility to develop optical clocks using transitions between the ground and a low-lying excited state in Cf15+ and Cf17+ ions. Using a high-accuracy relativistic method of calculation, we predicted the wavelengths of clock transitions, calculated relevant atomic properties, and analyzed a number of systematic effects (such as the electric quadrupole, micromotion, and quadratic Zeeman shifts of the clock transitions) that affect the accuracy and stability of the optical clocks. We also calculated magnetic dipole hyperfine-structure constants of the clock states and the blackbody radiation shifts of the clock transitions. ",
author = "Porsev, {S. G.} and Safronova, {U. I.} and Safronova, {M. S.} and Schmidt, {P. O.} and Bondarev, {A. I.} and Kozlov, {M. G.} and Tupitsyn, {I. I.} and C. Cheung",
note = "Funding Information: This work was supported in part by U.S. Office of Naval Research, Award No. N00014-17-1-2252. S.G.P., A.I.B., M.G.K., and I.I.T. acknowledge support by the Russian Science Foundation under Grant No. 19-12-00157. P.O.S. acknowledges support from the Max-Planck-Riken-PTB-Center for Time, Constants and Fundamental Symmetries and the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) through SCHM2678/5-1, and Germany's Excellence Strategy - EXC-2123/1 QuantumFrontiers 390837967. Publisher Copyright: {\textcopyright} 2020 American Physical Society. Copyright: Copyright 2020 Elsevier B.V., All rights reserved.",
year = "2020",
month = jul,
doi = "10.1103/PhysRevA.102.012802",
language = "English",
volume = "102",
journal = "Physical Review A - Atomic, Molecular, and Optical Physics",
issn = "1050-2947",
publisher = "American Physical Society",
number = "1",

}

RIS

TY - JOUR

T1 - Optical clocks based on the Cf15+ and Cf17+ ions

AU - Porsev, S. G.

AU - Safronova, U. I.

AU - Safronova, M. S.

AU - Schmidt, P. O.

AU - Bondarev, A. I.

AU - Kozlov, M. G.

AU - Tupitsyn, I. I.

AU - Cheung, C.

N1 - Funding Information: This work was supported in part by U.S. Office of Naval Research, Award No. N00014-17-1-2252. S.G.P., A.I.B., M.G.K., and I.I.T. acknowledge support by the Russian Science Foundation under Grant No. 19-12-00157. P.O.S. acknowledges support from the Max-Planck-Riken-PTB-Center for Time, Constants and Fundamental Symmetries and the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) through SCHM2678/5-1, and Germany's Excellence Strategy - EXC-2123/1 QuantumFrontiers 390837967. Publisher Copyright: © 2020 American Physical Society. Copyright: Copyright 2020 Elsevier B.V., All rights reserved.

PY - 2020/7

Y1 - 2020/7

N2 - Recent experimental progress in cooling, trapping, and quantum logic spectroscopy of highly charged ions (HCIs) made HCIs accessible for high-resolution spectroscopy and precision fundamental studies. Based on these achievements, we explore a possibility to develop optical clocks using transitions between the ground and a low-lying excited state in Cf15+ and Cf17+ ions. Using a high-accuracy relativistic method of calculation, we predicted the wavelengths of clock transitions, calculated relevant atomic properties, and analyzed a number of systematic effects (such as the electric quadrupole, micromotion, and quadratic Zeeman shifts of the clock transitions) that affect the accuracy and stability of the optical clocks. We also calculated magnetic dipole hyperfine-structure constants of the clock states and the blackbody radiation shifts of the clock transitions.

AB - Recent experimental progress in cooling, trapping, and quantum logic spectroscopy of highly charged ions (HCIs) made HCIs accessible for high-resolution spectroscopy and precision fundamental studies. Based on these achievements, we explore a possibility to develop optical clocks using transitions between the ground and a low-lying excited state in Cf15+ and Cf17+ ions. Using a high-accuracy relativistic method of calculation, we predicted the wavelengths of clock transitions, calculated relevant atomic properties, and analyzed a number of systematic effects (such as the electric quadrupole, micromotion, and quadratic Zeeman shifts of the clock transitions) that affect the accuracy and stability of the optical clocks. We also calculated magnetic dipole hyperfine-structure constants of the clock states and the blackbody radiation shifts of the clock transitions.

UR - http://www.scopus.com/inward/record.url?scp=85088657931&partnerID=8YFLogxK

U2 - 10.1103/PhysRevA.102.012802

DO - 10.1103/PhysRevA.102.012802

M3 - Article

AN - SCOPUS:85088657931

VL - 102

JO - Physical Review A - Atomic, Molecular, and Optical Physics

JF - Physical Review A - Atomic, Molecular, and Optical Physics

SN - 1050-2947

IS - 1

M1 - 012802

ER -

ID: 74018826