Abstract
The SiC-based materials, particularly SiC-fiber-reinforced SiC matrix (SiC/SiC) composites, show strong potential for structural and functional applications in future fusion power plants because they can operate at high temperatures with a range of coolants and breeders, thereby enabling higher energy conversion efficiency. This paper presents recent advancements in the development of SiC-based materials, focusing on processing techniques and material performance and resistance under fusion-relevant environments. The processing activities have emphasized near-net-shape fabrication and the joining of SiC subcomponents, with processing methods and material compositions informed by previous irradiation experiments on various grades of SiC. Research on irradiation effects has remained focused on degradation mechanisms and the microstructural optimization of SiC/SiC composites irradiated to high neutron damage levels. Analysis of irradiation defects in SiC has advanced via the application of cutting-edge characterization methods, among which Raman spectroscopy is becoming a common tool to assess atomic-scale chemical disorder. Fusion–fission crosscutting irradiation research has explored combined effects in SiC/SiC composites with application-relevant geometries, including bowing of SiC/SiC composite channels under neutron flux gradients, stress evolution in SiC/SiC composite tubes under through-thickness temperature gradients, and irradiation-enhanced corrosion in SiC. Finally, research opportunities for component testing and assessment under fusion-relevant conditions, in support of emerging concepts from the private fusion sector, are discussed.
| Original language | English |
|---|---|
| Article number | 156746 |
| Journal | Journal of Nuclear Materials |
| Volume | 630 |
| DOIs | |
| State | Published - Aug 2026 |
Funding
The work was supported by the US Department of Energy Office of Fusion Energy Sciences, Fusion Materials Program and Early Career Research Program, under contract DE-AC05-00OR22725 with UT-Battelle LLC. This study was also supported under the US Department of Energy–National Institutes for Quantum Science and Technology (Japan) collaboration. A portion of this research used resources at the High Flux Isotope Reactor, a US Department of Energy Office of Science user facility operated by Oak Ridge National Laboratory. The authors wish to thank Yan-Ru Lin, Benjamin Lamm, and Erica Heinrich at ORNL for reviewing and editing this manuscript. Notice: This manuscript has been authored by UT-Battelle, LLC, under contract DE-AC05–00OR22725 with the US Department of Energy (DOE). The US government retains and the publisher, by accepting the article for publication, acknowledges that the US government retains a nonexclusive, paid-up, irrevocable, worldwide license to publish or reproduce the published form of this manuscript, or allow others to do so, for US government purposes. DOE will provide public access to these results of federally sponsored research in accordance with the DOE Public Access Plan ( https://energy.gov/downloads/doe-public-access-plan ).
Keywords
- Advanced manufacturing
- Composite
- Neutron irradiation
- Nuclear transmutation
- Silicon carbide
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