Low-Density Materials for Particle Accelerator Applications: Challenges, Capabilities, and Future Directions

Low-density materials are emerging as a critical enabling technology for next-generation particle accelerator systems, offering unique combinations of low areal density, high thermal resilience, and tuneable functional properties. To address the challenges associated with their development and deployment, an international, multidisciplinary community spanning accelerator physics, materials science, and engineering convened to assess the current state of the field and define future research directions. The discussions highlighted significant progress in the development of carbon-based materials, including carbon nanotube fibres, graphene, and related nanostructured systems, alongside advances in fabrication, characterisation, and modelling capabilities. However, key challenges remain in achieving reproducible material quality, controlling impurities and microstructure, and bridging the gap between laboratory-scale demonstrations and reliable operation in accelerator environments. Limitations in predictive modelling and the availability of validated material data were also identified as critical barriers. The workshop underscored the importance of coordinated efforts in standardisation, testing under realistic conditions, and integration of experimental and simulation approaches. Emerging opportunities were identified in advanced beam instrumentation, high-performance targets, and novel functional materials. Overall, the outcomes emphasise the need for sustained collaboration and strategic investment to realise the full potential of low-density materials in future accelerator applications.

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Publication Details

Journal
Materials
Published
2026-09-20
DOI
https://doi.org/10.3390/ma19184008
Primary Topic
Particle Accelerators and Free-Electron Lasers
Type
article
Field-Weighted Citation Impact
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Low-Density Materials for Particle Accelerator Applications: Challenges, Capabilities, and Future Directions

S. Sgobba, Mariusz Sapinski, Alexander J.G. Lunt, Thierry Storà et al.
Materials
Particle Accelerators and Free-Electron Lasers
article

Low-Density Materials for Particle Accelerator Applications: Challenges, Capabilities, and Future Directions

S. Sgobba, Mariusz Sapinski, Alexander J.G. Lunt, Thierry Storà, Philippe Poulin, Chiara Pasquino, Elisabeth Sena-Welker, Raymond Veness
article en

Abstract

Low-density materials are emerging as a critical enabling technology for next-generation particle accelerator systems, offering unique combinations of low areal density, high thermal resilience, and tuneable functional properties. To address the challenges associated with their development and deployment, an international, multidisciplinary community spanning accelerator physics, materials science, and engineering convened to assess the current state of the field and define future research directions. The discussions highlighted significant progress in the development of carbon-based materials, including carbon nanotube fibres, graphene, and related nanostructured systems, alongside advances in fabrication, characterisation, and modelling capabilities. However, key challenges remain in achieving reproducible material quality, controlling impurities and microstructure, and bridging the gap between laboratory-scale demonstrations and reliable operation in accelerator environments. Limitations in predictive modelling and the availability of validated material data were also identified as critical barriers. The workshop underscored the importance of coordinated efforts in standardisation, testing under realistic conditions, and integration of experimental and simulation approaches. Emerging opportunities were identified in advanced beam instrumentation, high-performance targets, and novel functional materials. Overall, the outcomes emphasise the need for sustained collaboration and strategic investment to realise the full potential of low-density materials in future accelerator applications.

MaterialsVol. 19(18)
Centre National de la Recherche Scientifique (FR), Paul Scherrer Institute (CH), Centre de recherche Paul Pascal (FR), University of Bath (GB), European Organization for Nuclear Research (CH)
Industry, innovation and infrastructure
Openalex Percentile: Top 21%
Particle Accelerators and Free-Electron Lasers
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