Published November 3, 2023 | Published
Journal Article Open

Engineering Field-Insensitive Molecular Clock Transitions for Symmetry Violation Searches

  • 1. ROR icon California Institute of Technology

Abstract

Molecules are a powerful platform to probe fundamental symmetry violations beyond the standard model, as they offer both large amplification factors and robustness against systematic errors. As experimental sensitivities improve, it is important to develop new methods to suppress sensitivity to external electromagnetic fields, as limits on the ability to control these fields are a major experimental concern. Here we show that sensitivity to both external magnetic and electric fields can be simultaneously suppressed using engineered radio frequency, microwave, or two-photon transitions that maintain large amplification of CP-violating effects. By performing a clock measurement on these transitions, CP-violating observables including the electron electric dipole moment, nuclear Schiff moment, and magnetic quadrupole moment can be measured with suppression of external field sensitivity of ≳100 generically, and even more in many cases. Furthermore, the method is compatible with traditional Ramsey measurements, offers internal co-magnetometry, and is useful for systems with large angular momentum commonly present in molecular searches for nuclear CP violation.

Copyright and License

© 2023 American Physical Society.

Acknowledgement

We acknowledge helpful discussions with Chris Ho, Zack Lasner, Tim Steimle, Amar Vutha, and Trevor Wright. We thank Alexander Petrov, Ronald Garcia Ruiz, and Silviu-Marian Udrescu for providing molecular constants for our calculations. This work was supported by the Heising-Simons Foundation (2019-1193 and 2022-3361), the Alfred P. Sloan Foundation (G-2019-12502), the Gordon and Betty Moore Foundation (GBMF7947), and an NSF CAREER Grant (PHY-1847550). Y. T. was supported by the Masason Foundation. C. Z. was supported by the David and Ellen Lee Postdoctoral Scholarship.

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Additional details

Created:
November 2, 2023
Modified:
November 2, 2023