$^{229}$Th Nuclear Spectroscopy in an Opaque Material: Laser-Based Conversion Electron Mössbauer Spectroscopy of $^{229}$ThO$_2$

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Main Authors: Elwell, Ricky, Terhune, James E. S., Schneider, Christian, Morgan, Harry W. T., Tan, Hoang Bao Tran, Perera, Udeshika C., Rehn, Daniel A., Alfonso, Marisa C., von der Wense, Lars, Seiferle, Benedict, Scharl, Kevin, Thirolf, Peter G., Derevianko, Andrei, Hudson, Eric R.
Format: Preprint
Published: 2025
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_version_ 1866917210637729792
author Elwell, Ricky
Terhune, James E. S.
Schneider, Christian
Morgan, Harry W. T.
Tan, Hoang Bao Tran
Perera, Udeshika C.
Rehn, Daniel A.
Alfonso, Marisa C.
von der Wense, Lars
Seiferle, Benedict
Scharl, Kevin
Thirolf, Peter G.
Derevianko, Andrei
Hudson, Eric R.
author_facet Elwell, Ricky
Terhune, James E. S.
Schneider, Christian
Morgan, Harry W. T.
Tan, Hoang Bao Tran
Perera, Udeshika C.
Rehn, Daniel A.
Alfonso, Marisa C.
von der Wense, Lars
Seiferle, Benedict
Scharl, Kevin
Thirolf, Peter G.
Derevianko, Andrei
Hudson, Eric R.
contents Here, we report the first demonstration of laser-induced conversion electron Mössbauer spectroscopy of the $^{229}$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$_2$ sample whose band gap ($\sim$ 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$_2$ can be made from spinless isotopes and the internal conversion decay process reduces the isomeric state lifetime to only $\sim$10 $μ$s, allowing $\sim$10$^8$ relative reduction in clock interrogation time, a conversion-electron-based nuclear clock could lead to a $\sim$10$^4$ reduction in clock instability.
format Preprint
id arxiv_https___arxiv_org_abs_2506_03018
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle $^{229}$Th Nuclear Spectroscopy in an Opaque Material: Laser-Based Conversion Electron Mössbauer Spectroscopy of $^{229}$ThO$_2$
Elwell, Ricky
Terhune, James E. S.
Schneider, Christian
Morgan, Harry W. T.
Tan, Hoang Bao Tran
Perera, Udeshika C.
Rehn, Daniel A.
Alfonso, Marisa C.
von der Wense, Lars
Seiferle, Benedict
Scharl, Kevin
Thirolf, Peter G.
Derevianko, Andrei
Hudson, Eric R.
Atomic Physics
Nuclear Experiment
Optics
Quantum Physics
Here, we report the first demonstration of laser-induced conversion electron Mössbauer spectroscopy of the $^{229}$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$_2$ sample whose band gap ($\sim$ 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$_2$ can be made from spinless isotopes and the internal conversion decay process reduces the isomeric state lifetime to only $\sim$10 $μ$s, allowing $\sim$10$^8$ relative reduction in clock interrogation time, a conversion-electron-based nuclear clock could lead to a $\sim$10$^4$ reduction in clock instability.
title $^{229}$Th Nuclear Spectroscopy in an Opaque Material: Laser-Based Conversion Electron Mössbauer Spectroscopy of $^{229}$ThO$_2$
topic Atomic Physics
Nuclear Experiment
Optics
Quantum Physics
url https://arxiv.org/abs/2506.03018