Title :
Tunneling Study of SRF Cavity-Grade Niobium
Author :
Proslier, Thomas ; Zasadzinski, John ; Cooley, Lance ; Pellin, Michael ; Norem, Jim ; Elam, Jeffrey ; Antoine, Claire Z. ; Rimmer, Robert A. ; Kneisel, Peter
Author_Institution :
Illinois Inst. of Technol., Chicago, IL, USA
fDate :
6/1/2009 12:00:00 AM
Abstract :
Niobium, with its very high HC1, has been used in superconducting radio frequency (SRF) cavities for accelerator systems for 40 years with continual improvement. The quality factor of cavities (Q) is governed by the surface impedance RBCS, which depends on the quasiparticle gap, delta, and the superfluid density. Both of these parameters are seriously affected by surface imperfections (metallic phases, dissolved oxygen, magnetic impurities). Loss mechanism and surface treatments of Nb cavities found to improve the Q factor are still unsolved mysteries. We present here an overview of the capabilities of the point contact tunneling spectroscopy and Atomic layer deposition methods and how they can help understanding the High field Q-drop and the mild baking effect. Tunneling spectroscopy was performed on Nb pieces from the same processed material used to fabricate SRF cavities. Air exposed, electropolished Nb exhibited a surface superconducting gap Delta = 1.55 meV, characteristic of clean, bulk Nb, however the tunneling density of states (DOS) was broadened significantly. Nb pieces treated with the same mild baking used to improve the Q-slope in SRF cavities revealed a much sharper DOS. Good fits to the DOS are obtained using Shiba theory suggesting that magnetic scattering of quasiparticles is the origin of the degraded surface superconductivity and the Q-slope problem of Nb SRF cavities.
Keywords :
Q-factor; accelerator RF systems; accelerator cavities; atomic layer deposition; electrolytic polishing; electronic density of states; magnetic impurities; niobium; point contact spectroscopy; quasiparticles; superconducting energy gap; superconducting materials; superfluidity; surface impedance; surface treatment; tunnelling spectra; DOS; Nb; Q-slope problem; SRF cavity-grade niobium; Shiba theory; accelerator systems; atomic layer deposition methods; dissolved oxygen; electropolishing; magnetic impurities; magnetic scattering; metallic phases; mild baking effect; point contact tunneling spectroscopy; quality factor; quasiparticle gap; quasiparticles; superconducting radio frequency cavities; superfluid density; surface impedance; surface imperfections; surface superconducting gap; surface superconductivity; surface treatments; tunneling density of states; Magnetism; RF cavity; niobium; tunneling spectroscopy;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2009.2018757