English

Multiply charged uranium monoxide as a versatile probe of fundamental physics

Chemical Physics 2025-12-18 v1

Abstract

Multiply charged actinide molecules provide a unique platform to study fundamental physics and the chemical bond under extreme conditions. Beyond the inherently large relativistic effects associated with a high proton number ZZ, an increased molecular charge can further enhance the electronic sensitivity to symmetry-violating nuclear effects, including nuclear Schiff moments. Experimental investigations of multiply charged actinide molecules are challenging because the high charges severely destabilize chemical bonds, leading to spontaneous Coulomb explosion. We demonstrate a method to systematically generate and detect molecular ions at the edge of chemical stability. By applying high-fluence laser ablation to a depleted uranium metal foil, we produce atomic uranium ions Uz+^{z+} and uranium monoxide cations UOz+^{z+} with z=1z = 1--4. Among them, we observe UO3+^{3+} and UO4+^{4+}, which exhibit comparatively simple electronic structures and are therefore promising for precision spectroscopy. The experiments are supported by relativistic density functional theory calculations of equilibrium bond lengths, charge distributions, and binding energies of all observed molecules. Calculations of symmetry-violating properties suggest a pronounced sensitivity of UO3+^{3+} to hadronic CPCP violation. This approach opens a pathway for high-precision investigations of fundamental symmetries and the exploration of relativistic actinide chemistry in previously inaccessible regimes.

Keywords

Cite

@article{arxiv.2512.14924,
  title  = {Multiply charged uranium monoxide as a versatile probe of fundamental physics},
  author = {Jonas Stricker and Konstantin Gaul and Paul Fischer and Lennard M. Arndt and Florian Kraus and David Krug and Dennis Renisch and Ferdinand Schmidt-Kaler and Lutz Schweikhard and Jean Velten and Christoph E. Düllmann},
  journal= {arXiv preprint arXiv:2512.14924},
  year   = {2025}
}