$^{229}$Th Nuclear Spectroscopy in an Opaque Material: Laser-Based Conversion Electron M\"ossbauer Spectroscopy of $^{229}$ThO$_2$
Abstract
Here, we report the first demonstration of laser-induced conversion electron M\"{o}ssbauer spectroscopy of the Th nuclear isomeric state, which provides the ability to probe the nuclear transition in a material that is opaque to light resonant with the nuclear transition. Specifically, we excite the nuclear transition in a thin ThO sample whose band gap ( 6 eV) is considerably smaller than the nuclear isomeric state energy (8.4 eV). As a result, the excited nucleus can quickly decay by internal conversion, resulting in the ejection of electrons from the surface. By collecting these conversion electrons, nuclear spectroscopy can be recorded. Unlike fluorescence spectroscopy, this technique is compatible with materials whose work function is less than the nuclear transition energy, opening a wider class of systems to study. Further, because ThO can be made from spinless isotopes and the internal conversion decay process reduces the isomeric state lifetime to only 10 s, allowing 10 relative reduction in clock interrogation time, a conversion-electron-based nuclear clock could lead to a 10 reduction in clock instability.
Keywords
Cite
@article{arxiv.2506.03018,
title = {$^{229}$Th Nuclear Spectroscopy in an Opaque Material: Laser-Based Conversion Electron M\"ossbauer Spectroscopy of $^{229}$ThO$_2$},
author = {Ricky Elwell and James E. S. Terhune and Christian Schneider and Harry W. T. Morgan and Hoang Bao Tran Tan and Udeshika C. Perera and Daniel A. Rehn and Marisa C. Alfonso and Lars von der Wense and Benedict Seiferle and Kevin Scharl and Peter G. Thirolf and Andrei Derevianko and Eric R. Hudson},
journal= {arXiv preprint arXiv:2506.03018},
year = {2026}
}
Comments
18 pages, 7 figures