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Collinear Three-Photon Excitation of a Strongly Forbidden Optical Clock Transition

Atomic Physics 2025-08-27 v3 Quantum Physics

Abstract

The 1S0 ⁣ ⁣3P0{{^1\mathrm{S}_0}\!-\!{^3\mathrm{P}_0}} clock transition in strontium serves as the foundation for the world's best atomic clocks and for gravitational wave detector concepts in clock atom interferometry. This transition is weakly allowed in the fermionic isotope 87^{87}Sr but strongly forbidden in bosonic isotopes. Here, we demonstrate coherent excitation of the clock transition in bosonic 88{}^{88}Sr using a novel collinear three-photon process in a weak magnetic field. We observe Rabi oscillations with frequencies of up to 50 kHz50~\text{kHz} using W/cm2\text{W}/\text{cm}^{2} laser intensities and Gauss-level magnetic field amplitudes. The absence of nuclear spin in bosonic isotopes offers decreased sensitivity to magnetic fields and optical lattice light shifts, enabling atomic clocks with reduced systematic errors. The collinear propagation of the laser fields permits the interrogation of spatially separated atomic ensembles with common laser pulses, a key requirement for dark matter searches and gravitational wave detection with next-generation quantum sensors.

Keywords

Cite

@article{arxiv.2406.07902,
  title  = {Collinear Three-Photon Excitation of a Strongly Forbidden Optical Clock Transition},
  author = {Samuel P. Carman and Jan Rudolph and Benjamin E. Garber and Michael J. Van de Graaff and Hunter Swan and Yijun Jiang and Megan Nantel and Mahiro Abe and Rachel L. Barcklay and Jason M. Hogan},
  journal= {arXiv preprint arXiv:2406.07902},
  year   = {2025}
}

Comments

23 pages, 8 figures