Improved high-gradient performance for medium-velocity superconducting half-wave resonators: Surface preparation and trapped flux mitigation
arXiv:2510.19076 · doi:10.1103/nh3z-zwz3
Abstract
A development effort to improve the performance of superconducting radio-frequency half-wave resonators (SRF HWRs) is underway at the Facility for Rare Isotope Beams (FRIB), where 220 such resonators are in operation. Our goal was to achieve an intrinsic quality factor (Q0) of >= 2E10 at an accelerating gradient (Ea) of 12 MV/m. FRIB production resonators were prepared with buffered chemical polishing (BCP). First trials on electropolishing (EP) and post-EP low temperature baking (LTB) of FRIB HWRs allowed us to reach higher gradient (15 MV/m, limited by quench) with a higher quality factor at high gradient, but Q0 was still below our goal. Trapped magnetic flux during the Dewar test was found to be a source of Q0 reduction. Three strategies were used to reduce the trapped flux: (i) adding a local magnetic shield (LMGS) to supplement the ``global'' magnetic shield around the Dewar for reduction of the ambient magnetic field; (ii) performing a ``uniform cool-down'' (UC) to reduce the thermoelectric currents; and (iii) using a compensation coil to further reduce the ambient field with active field cancellation (AFC). The LMGS improved the Q0, but not enough to reach our goal. With UC and AFC, we exceeded our goal, reaching Q0 = 2.8E10 at Ea = 12 MV/m.
20 pages, 17 figures, submitted to Phys Rev Accel Beams
References in corpus (17)
- Nitrogen and argon doping of niobium for superconducting radio frequency cavities: a pathway to highly efficient accelerating structures
- Unprecedented Quality Factors at Accelerating Gradients up to 45 MV/m in Niobium Superconducting Resonators via Low Temperature Nitrogen Infusion
- Ultra-high quality factors in superconducting niobium cavities in ambient magnetic fields up to 190 mG
- Dependence of the residual surface resistance of superconducting RF cavities on the cooling dynamics around
- Efficient expulsion of magnetic flux in superconducting RF cavities for high applications
- Ultra-Low Surface Resistance via Vacuum Heat Treatment of Superconducting Radiofrequency Cavities
- Reply to "Comment on the 'Decrease of the surface resistance in superconducting niobium resonator cavities by the microwave field'"
- Effect of interstitial impurities on the field dependent microwave surface resistance of niobium
- Effect of Low Temperature Baking in Nitrogen on the Performance of a Niobium Superconducting Radio Frequency Cavity
- Magnetic Flux Dynamics in Horizontally Cooled Superconducting Cavities
- Flux trapping in superconducting accelerating cavities during cooling down with a spatial temperature gradient
- Comment on Field-dependent surface resistance for superconducting niobium accelerating cavities
- Frequency dependence of trapped flux sensitivity in SRF cavities
- Q-factor optimization for high-beta 650 MHz cavities for PIP-II
- Impact of geometry on the magnetic flux trapping of superconducting accelerating cavities
- Determination of the magnetic field dependence of the surface resistance of superconductors from cavity tests
- Mid-T Heat Treatments on BCPed Coaxial Cavities at TRIUMF