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@inproceedings{fonnesu:srf2021-supfdv018, author = {D. Fonnesu and J. Bremer and T. Koettig and L. Laín-Amador and C. Pereira Carlos and G.J. Rosaz and A.P.O. Vaaranta}, % author = {D. Fonnesu and J. Bremer and T. Koettig and L. Laín-Amador and C. Pereira Carlos and G.J. Rosaz and others}, % author = {D. Fonnesu and others}, title = {{CERN Based T_{c} Measurement Station for Thin-Film Coated Copper Samples and Results on Related Studies}}, booktitle = {Proc. SRF'21}, % booktitle = {Proc. 20th International Conference on RF Superconductivity (SRF'21)}, pages = {105--108}, eid = {SUPFDV018}, language = {english}, keywords = {niobium, cavity, SRF, site, pick-up}, venue = {East Lansing, MI, USA}, series = {International Conference on RF Superconductivity}, number = {20}, publisher = {JACoW Publishing, Geneva, Switzerland}, month = {10}, year = {2022}, issn = {2673-5504}, isbn = {978-3-95450-233-2}, doi = {10.18429/JACoW-SRF2021-SUPFDV018}, url = {https://jacow.org/srf2021/papers/supfdv018.pdf}, abstract = {{In the framework of The Future Circular Collider (FCC) Study, the development of thin-film coated superconducting radio-frequency (SRF) cavities capable of providing higher accelerating fields (10 to 20 MV/m against 5 MV/m of LHC) represents a major challenge. In this work, we present the development of a test stand commissioned at CERN for the inductive measurement of the critical temperature (T_{c}) of SC thin-film deposited on copper samples for SRF applications. Based on new studies for the production of Non Evaporable Getters (NEG) coated chambers [1], we also present the first results of an alternative forming method for seamless copper cavities with niobium layer integrated in the production process.}}, }