Smallness of the nuclear polarization effect in the hyperfine structure of heavy muonic atoms as a stimulus for next-generation experiments
arXiv:2408.16516 · doi:10.1103/PhysRevLett.134.093003
Abstract
There is renewed interest in studies of muonic atoms, which may provide detailed information on nuclear structure. A major limiting factor in the interpretation of measurements is the nuclear polarization contribution. We propose a method to determine this contribution to the hyperfine structure in muonic atoms from a combination of theory and experiment for hydrogenlike ions and muonic atoms. Applying the method to Tl and Bi, for which there are H-like ion and muonic atom hyperfine experimental data, we find that the nuclear polarization contribution for these systems is small, and place a limit on its size of less than the total hyperfine splitting. We have also performed direct calculations of the nuclear polarization contribution using a semi-analytical model, which indicate that it may be as much as two orders of magnitude smaller. Therefore, we conclude that the nuclear polarization correction to the hyperfine structure of muonic atoms does not represent a limiting factor for next-generation experiments.
5 pages, 1 figure, 2 tables
References in corpus (17)
- Search for New Physics with Atoms and Molecules
- QED tests with highly-charged ions
- Nuclear polarization study: New frontiers for tests of QED in heavy highly charged ions
- Ground-state hyperfine structure of H-, Li-, and B-like ions in middle-Z region
- Direct measurement of the He magnetic moments
- Nuclear magnetization distribution effect in molecules: Ra and RaF hyperfine structure
- The measurement of the quadrupole moment of 185-Re and 187-Re from the hyperfine structure of muonic X rays
- Testing atomic wave functions in the nuclear vicinity: the hyperfine structure with empirically-deduced nuclear and quantum electrodynamic effects
- Nuclear magnetic moments of francium 207-213 from precision hyperfine comparisons
- Theoretical prediction of the Fine and Hyperfine structure of heavy muonic atoms
- Empirical determination of the Bohr-Weisskopf effect in cesium and improved tests of precision atomic theory in searches for new physics
- The Bohr-Weisskopf effect: from hydrogenlike-ion experiments to heavy-atom calculations of the hyperfine structure
- Calculation of francium hyperfine anomaly
- Two-photon exchange on neutron and the hyperfine splitting
- QED calculations of the nuclear recoil effect in muonic atoms
- Revisiting the extraction of charge radii of Ca and Pb with muonic atom spectroscopy
- Nuclear polarizability effects in He hyperfine splitting