Isotope Production in Muon-Catalyzed-Fusion Systems
Abstract
Producing valuable isotopes with high-flux high-energy neutrons generated by muon-catalyzed fusion (CF) reactions could substantially improve the economic prospects for muon-catalyzed fusion. Because no external heating is required for CF, heat flux constraints are significantly relaxed compared with fusion systems requiring external heating. This could allow CF to attain much higher neutron flux without breaching material heat flux limits. If muon production rates can be increased, CF systems employing transmutation could be viable well before energy breakeven is possible. For CF systems transmuting valuable isotopes, the required number of catalyzed fusion events per muon and muon energy generation cost can be relaxed by several orders of magnitude relative to electricity-generating systems, making CF an attractive high-flux neutron source. We show an example CF system with a 10 gram feedstock and a steady-state muon rate of muons / second - roughly half a kilowatt of fusion power - could produce 20 mg of per year - comparable to 400 times global supply in 2024. As higher muon rate sources become available, many other radioisotope transmutation pathways become viable. These findings motivate the accelerated development of CF systems for neutron-driven isotope production far before net energy generation is possible.
Cite
@article{arxiv.2511.20951,
title = {Isotope Production in Muon-Catalyzed-Fusion Systems},
author = {J. F. Parisi and A. Rutkowski},
journal= {arXiv preprint arXiv:2511.20951},
year = {2025}
}
Comments
7 pages, 3 figures