Key directions for research and development of superconducting radio frequency cavities
Accelerator Physics
2022-08-23 v2
Abstract
Radio frequency superconductivity is a cornerstone technology for many future HEP particle accelerators and experiments from colliders to proton drivers for neutrino facilities to searches for dark matter. While the performance of superconducting RF (SRF) cavities has improved significantly over the last decades, and the SRF technology has enabled new applications, the proposed HEP facilities and experiments pose new challenges. To address these challenges, the field continues to generate new ideas and there seems to be a vast room for improvements. In this paper we discuss the key research directions that are aligned with and address the future HEP needs.
Keywords
Cite
@article{arxiv.2204.01178,
title = {Key directions for research and development of superconducting radio frequency cavities},
author = {S. Belomestnykh and S. Posen and D. Bafia and S. Balachandran and M. Bertucci and A. Burrill and A. Cano and M. Checchin and G. Ciovati and L. D. Cooley and G. Dalla Lana Semione and J. Delayen and G. Eremeev and F. Furuta and F. Gerigk and B. Giaccone and D. Gonnella and A. Grassellino and A. Gurevich and W. Hillert and M. Iavarone and J. Knobloch and T. Kubo and W. K. Kwok and R. Laxdal and P. J. Lee and M. Liepe and M. Martinello and O. S. Melnychuk and A. Nassiri and A. Netepenko and H. Padamsee and C. Pagani and R. Paparella and U. Pudasaini and C. E. Reece and D. Reschke and A. Romanenko and M. Ross and K. Saito and J. Sauls and D. N. Seidman and N. Solyak and Z. Sung and K. Umemori and A. -M. Valente-Feliciano and W. Venturini Delsolaro and N. Walker and H. Weise and U. Welp and M. Wenskat and G. Wu and X. X. Xi and V. Yakovlev and A. Yamamoto and J. Zasadzinski},
journal= {arXiv preprint arXiv:2204.01178},
year = {2022}
}
Comments
contribution to Snowmass 2021