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Investigating the Superconducting Properties and Surface Morphology of Sputtered Nb Films on Cu Due to Laser Treatment

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Investigating the Superconducting Properties and Surface Morphology of Sputtered Nb Films on Cu Due to Laser Treatment. / Turner, Daniel Andrew; Malyshev, O. B.; Burt, G. et al.
In: IEEE Transactions on Applied Superconductivity, Vol. 33, No. 4, 7500512, 01.06.2023, p. 1-12.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Turner, DA, Malyshev, OB, Burt, G, Seiler, E, Ries, R, Medvids, A, Onufrijevs, P, Valizadeh, R, Sublet, A, Pira, C, Chyhyrynets, E, Vogel, M, Leith, S & Junginger, T 2023, 'Investigating the Superconducting Properties and Surface Morphology of Sputtered Nb Films on Cu Due to Laser Treatment', IEEE Transactions on Applied Superconductivity, vol. 33, no. 4, 7500512, pp. 1-12. https://doi.org/10.1109/tasc.2023.3243459

APA

Turner, D. A., Malyshev, O. B., Burt, G., Seiler, E., Ries, R., Medvids, A., Onufrijevs, P., Valizadeh, R., Sublet, A., Pira, C., Chyhyrynets, E., Vogel, M., Leith, S., & Junginger, T. (2023). Investigating the Superconducting Properties and Surface Morphology of Sputtered Nb Films on Cu Due to Laser Treatment. IEEE Transactions on Applied Superconductivity, 33(4), 1-12. Article 7500512. https://doi.org/10.1109/tasc.2023.3243459

Vancouver

Turner DA, Malyshev OB, Burt G, Seiler E, Ries R, Medvids A et al. Investigating the Superconducting Properties and Surface Morphology of Sputtered Nb Films on Cu Due to Laser Treatment. IEEE Transactions on Applied Superconductivity. 2023 Jun 1;33(4):1-12. 7500512. Epub 2023 Feb 14. doi: 10.1109/tasc.2023.3243459

Author

Turner, Daniel Andrew ; Malyshev, O. B. ; Burt, G. et al. / Investigating the Superconducting Properties and Surface Morphology of Sputtered Nb Films on Cu Due to Laser Treatment. In: IEEE Transactions on Applied Superconductivity. 2023 ; Vol. 33, No. 4. pp. 1-12.

Bibtex

@article{cd55747bf07f4652a5c617cec1e10817,
title = "Investigating the Superconducting Properties and Surface Morphology of Sputtered Nb Films on Cu Due to Laser Treatment",
abstract = "Bulk niobium is currently the material of choice for superconducting radio frequency (SRF) cavities and is a well matured process. However, it is possible that SRF cavities could be further improved beyond bulk Nb by sputtering thin Nb films onto Cu cavities. Copper has a greater thermal conductivity than Nb and is also easier to machine, while sputtering films on the surface reduces the amount of Nb used to fabricate the whole cavity. However, sputtering Nb on Cu produces other issues, for example, the surface quality of the Cu affects the quality of the Nb deposited on the surface and therefore the superconducting parameters. As the Nb on the surface is not perfect, the magnetic field produced by the RF can enter the cavity earlier than expected, producing RF losses, which can in turn lead to a quench. One approach is to treat the Nb post deposition by irradiating the surface using a laser to polish the surface of the Nb and increase the surface magnetic field that the cavity can maintain while remaining in the Meissner state. A magnetic field penetration experiment designed and built at Daresbury Laboratory has been used to measure the field of full flux penetration to characterize the effect of the laser treatment on the superconducting properties of the Nb. Surface characterization and the response of the Nb in a dc magnetic field have also been performed to try and provide an explanation for the change in the superconducting properties. The results demonstrate that the laser treatment can lead to an increase in the magnetic field at which the flux penetrates from one side of the sample to the other, thus it could potentially improve the performance of Nb coated RF cavities.",
keywords = "Electrical and Electronic Engineering, Condensed Matter Physics, Electronic, Optical and Magnetic Materials",
author = "Turner, {Daniel Andrew} and Malyshev, {O. B.} and G. Burt and E. Seiler and R. Ries and A. Medvids and P. Onufrijevs and R. Valizadeh and A. Sublet and C. Pira and E. Chyhyrynets and M. Vogel and S. Leith and T. Junginger",
year = "2023",
month = jun,
day = "1",
doi = "10.1109/tasc.2023.3243459",
language = "English",
volume = "33",
pages = "1--12",
journal = "IEEE Transactions on Applied Superconductivity",
issn = "1051-8223",
publisher = "Institute of Electrical and Electronics Engineers Inc.",
number = "4",

}

RIS

TY - JOUR

T1 - Investigating the Superconducting Properties and Surface Morphology of Sputtered Nb Films on Cu Due to Laser Treatment

AU - Turner, Daniel Andrew

AU - Malyshev, O. B.

AU - Burt, G.

AU - Seiler, E.

AU - Ries, R.

AU - Medvids, A.

AU - Onufrijevs, P.

AU - Valizadeh, R.

AU - Sublet, A.

AU - Pira, C.

AU - Chyhyrynets, E.

AU - Vogel, M.

AU - Leith, S.

AU - Junginger, T.

PY - 2023/6/1

Y1 - 2023/6/1

N2 - Bulk niobium is currently the material of choice for superconducting radio frequency (SRF) cavities and is a well matured process. However, it is possible that SRF cavities could be further improved beyond bulk Nb by sputtering thin Nb films onto Cu cavities. Copper has a greater thermal conductivity than Nb and is also easier to machine, while sputtering films on the surface reduces the amount of Nb used to fabricate the whole cavity. However, sputtering Nb on Cu produces other issues, for example, the surface quality of the Cu affects the quality of the Nb deposited on the surface and therefore the superconducting parameters. As the Nb on the surface is not perfect, the magnetic field produced by the RF can enter the cavity earlier than expected, producing RF losses, which can in turn lead to a quench. One approach is to treat the Nb post deposition by irradiating the surface using a laser to polish the surface of the Nb and increase the surface magnetic field that the cavity can maintain while remaining in the Meissner state. A magnetic field penetration experiment designed and built at Daresbury Laboratory has been used to measure the field of full flux penetration to characterize the effect of the laser treatment on the superconducting properties of the Nb. Surface characterization and the response of the Nb in a dc magnetic field have also been performed to try and provide an explanation for the change in the superconducting properties. The results demonstrate that the laser treatment can lead to an increase in the magnetic field at which the flux penetrates from one side of the sample to the other, thus it could potentially improve the performance of Nb coated RF cavities.

AB - Bulk niobium is currently the material of choice for superconducting radio frequency (SRF) cavities and is a well matured process. However, it is possible that SRF cavities could be further improved beyond bulk Nb by sputtering thin Nb films onto Cu cavities. Copper has a greater thermal conductivity than Nb and is also easier to machine, while sputtering films on the surface reduces the amount of Nb used to fabricate the whole cavity. However, sputtering Nb on Cu produces other issues, for example, the surface quality of the Cu affects the quality of the Nb deposited on the surface and therefore the superconducting parameters. As the Nb on the surface is not perfect, the magnetic field produced by the RF can enter the cavity earlier than expected, producing RF losses, which can in turn lead to a quench. One approach is to treat the Nb post deposition by irradiating the surface using a laser to polish the surface of the Nb and increase the surface magnetic field that the cavity can maintain while remaining in the Meissner state. A magnetic field penetration experiment designed and built at Daresbury Laboratory has been used to measure the field of full flux penetration to characterize the effect of the laser treatment on the superconducting properties of the Nb. Surface characterization and the response of the Nb in a dc magnetic field have also been performed to try and provide an explanation for the change in the superconducting properties. The results demonstrate that the laser treatment can lead to an increase in the magnetic field at which the flux penetrates from one side of the sample to the other, thus it could potentially improve the performance of Nb coated RF cavities.

KW - Electrical and Electronic Engineering

KW - Condensed Matter Physics

KW - Electronic, Optical and Magnetic Materials

U2 - 10.1109/tasc.2023.3243459

DO - 10.1109/tasc.2023.3243459

M3 - Journal article

VL - 33

SP - 1

EP - 12

JO - IEEE Transactions on Applied Superconductivity

JF - IEEE Transactions on Applied Superconductivity

SN - 1051-8223

IS - 4

M1 - 7500512

ER -