Photoionization cross sections of ultracold 88Sr in 1P1 and 3S1 states at 390 nm and the resulting blue-detuned magic wavelength optical lattice clock constraints

Author:

Witkowski Marcin1ORCID,Bilicki Sławomir1,Bober Marcin1,Kovačić Domagoj12,Singh Vijay1,Tonoyan Ara13ORCID,Zawada Michał1ORCID

Affiliation:

1. Nicolaus Copernicus University

2. Institute of Physics

3. National Academy of Sciences of the Republic of Armenia

Abstract

We present the measurements of the photoionization cross sections of the excited 1P1 and 3S1 states of ultracold 88Sr atoms at 389.889 nm wavelength, which is the magic wavelength of the 1S0-3P0 clock transition. The photoionization cross section of the 1P1 state is determined from the measured ionization rates of 88Sr in the magneto-optical trap in the 1P1 state to be 2.20(50)×10−20 m2, while the photoionization cross section of 88Sr in the 3S1 state is inferred from the photoionization-induced reduction in the number of atoms transferred through the 3S1 state in an operating optical lattice clock to be 1.38(66) ×10−18 m2. Furthermore, the resulting limitations of employing a blue-detuned magic wavelength optical lattice in strontium optical lattice clocks are evaluated. We estimated photoionization induced loss rates of atoms at 389.889 nm wavelength under typical experimental conditions and made several suggestions on how to mitigate these losses. In particular, the large photoionization induced losses for the 3S1 state would make the use of the 3S1 state in the optical cycle in a blue-detuned optical lattice unfeasible and would instead require the less commonly used 3D1,2 states during the detection part of the optical clock cycle.

Funder

H2020 Future and Emerging Technologies

European Metrology Programme for Innovation and Research

Fundacja na rzecz Nauki Polskiej

Narodowe Centrum Nauki

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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