English

Radiative decay of muonic molecules in resonance states

Atomic Physics 2025-01-23 v4

Abstract

In this study, we theoretically investigated x-ray spectra from the radiative decay of muonic deuterium molecules in resonance states ddμ\mu^\ast, which plays an important role in a new kinetic model of muon catalyzed fusion (μ\muCF). The resonance states are Feshbach resonances located below the dμ\mu(n=2n=2) + d threshold energy and radiatively decay into the continuum or bound states. The x-ray spectra having characteristic shapes according to the radial distribution of the two nuclei are obtained using precise three-body wave functions. We carefully examined the convergence of the x-ray spectra and achieved agreements between the length- and velocity-gauge calculations. We revealed a non-adiabatic kinetic energy distribution of the decay fragments, indicating that the radiative decay becomes a heating source of muonic atoms. We also investigated the decay branch that directly results in bound-state muonic molecules. Some resonance states ddμ\mu^\ast and dtμ\mu^\ast are found to have high branching ratios to the bound state where intramolecular nuclear fusion occurs. The formation of the muonic molecules in the bound states from metastable muonic atoms can be a fast track in the μ\muCF cycle which skips a slow path to form the bound state from the ground-state muonic atoms and increases the μ\muCF cycle rate. Although the spectra from the radiative decays are located in the energy range of 1.51.5--1.9971.997 keV, which is close to the Kα\alpha x-ray of 1.997 keV from muonic deuterium atoms, state-of-the-art microcalorimeters can distinguish them.

Keywords

Cite

@article{arxiv.2407.01756,
  title  = {Radiative decay of muonic molecules in resonance states},
  author = {Takuma Yamashita and Kazuhiro Yasuda and Yasushi Kino},
  journal= {arXiv preprint arXiv:2407.01756},
  year   = {2025}
}

Comments

19 pages, 16 figures, 4 tables