Evidence of high-field radio-frequency hot spots due to trapped vortices in niobium cavities

被引:28
|
作者
Ciovati, G. [1 ]
Gurevich, A. [2 ]
机构
[1] Thomas Jefferson Natl Accelerator Facil, Newport News, VA 23606 USA
[2] Florida State Univ, Ctr Appl Superconduct, Natl High Magnet Field Lab, Tallahassee, FL 32310 USA
关键词
D O I
10.1103/PhysRevSTAB.11.122001
中图分类号
O57 [原子核物理学、高能物理学];
学科分类号
070202 ;
摘要
Superconducting radio-frequency (rf) cavities made of high-purity niobium exhibit strong anomalous rf losses starting at peak surface magnetic fields of about 90-100 mT in the gigahertz range. This phenomenon is referred to as "Q drop.'' Temperature maps of the cavity surface have revealed the presence of "hot spots'' in the high magnetic field region of the cavities. Several models have been proposed over the years to explain this phenomenon but there is still no experimental evidence on the mechanisms behind such hot spots. In this work we show that at least some of the hot spots are due to trapped vortices responsible for the anomalous losses. Here we report experiments in which a local thermal gradient was applied to the hot spot regions of a cavity in order to displace the vortices. Temperature maps measured before and after applying the thermal gradient unambiguously show that the hot spots do move and change their intensities, allowing us to determine changes in the hot spot positions and strengths and their effect on the cavity performance. Results on a large-grain niobium cavity clearly show a different distribution and in some cases a weakening of the intensity of the "hot spots,'' suggesting new ways of improving the cavity performance without additional material treatments.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] Flux expulsion in niobium superconducting radio-frequency cavities of different purity and essential contributions to the flux sensitivity
    Dhakal, P.
    Ciovati, G.
    Gurevich, A.
    PHYSICAL REVIEW ACCELERATORS AND BEAMS, 2020, 23 (02):
  • [22] Niobium near-surface composition during nitrogen infusion relevant for superconducting radio-frequency cavities
    Semione, G. D. L.
    Pandey, A. Dangwal
    Tober, S.
    Pfrommer, J.
    Poulain, A.
    Drnec, J.
    Schuetz, G.
    Keller, T. F.
    Noei, H.
    Vonk, V.
    Foster, B.
    Stierle, A.
    PHYSICAL REVIEW ACCELERATORS AND BEAMS, 2019, 22 (10):
  • [24] Field, frequency, and temperature dependencies of the surface resistance of nitrogen diffused niobium superconducting radio frequency cavities
    Dhakal, P.
    Khanal, B. D.
    Gurevich, A.
    Ciovati, G.
    PHYSICAL REVIEW ACCELERATORS AND BEAMS, 2024, 27 (06)
  • [25] HIGH ACCELERATING FIELD SUPERCONDUCTING RADIO FREQUENCY CAVITIES.
    Orr, R. S.
    Saito, K.
    Furuta, F.
    Saeki, T.
    Inoue, H.
    Morozumi, Y.
    Higo, T.
    Higashi, Y.
    Matsumoto, H.
    Kazakov, S.
    Yamaoka, H.
    Ueno, K.
    Sato, M.
    ASTROPARTICLE, PARTICLE AND SPACE PHYSICS, DETECTORS AND MEDICAL PHYSICS APPLICATIONS, 2008, 4 : 486 - +
  • [26] Study on the interstitial oxygen diffusion to understand the reduction of cryogenic RF loss for the superconducting radio-frequency niobium cavities
    Yu, Mingming
    Huang, Shichun
    Zhao, Yong
    Gu, Xiangcheng
    Peng, Long
    Lai, Jiwei
    Zhu, Tongtong
    Wang, Yihan
    Wu, Andong
    Tan, Teng
    He, Yuan
    Cao, Hongwen
    Cao, Yunpeng
    Zhang, Kun
    SUPERCONDUCTOR SCIENCE & TECHNOLOGY, 2024, 37 (10):
  • [27] Hot plasma dielectric response to radio-frequency fields in inhomogeneous magnetic field
    Svidzinski, V. A.
    Kim, J. S.
    Spencer, J. A.
    Zhao, L.
    Galkin, S. A.
    Evstatiev, E. G.
    PHYSICS OF PLASMAS, 2016, 23 (11)
  • [28] KINETIC-EQUATION FOR A PLASMA IN A HIGH RADIO-FREQUENCY FIELD
    BYCHENKO.VY
    SILIN, VP
    ZHURNAL EKSPERIMENTALNOI I TEORETICHESKOI FIZIKI, 1974, 67 (01): : 134 - 146
  • [29] Evidence of increased radio-frequency losses in cavities from the fundamental power coupler cold window
    Marhauser, Frank
    Ciovati, Gianluigi
    PHYSICAL REVIEW ACCELERATORS AND BEAMS, 2021, 24 (09)
  • [30] Field-Enhanced Superconductivity in High-Frequency Niobium Accelerating Cavities
    Martinello, M.
    Checchin, M.
    Romanenko, A.
    Grassellino, A.
    Aderhold, S.
    Chandrasekeran, S. K.
    Melnychuk, O.
    Posen, S.
    Sergatskov, D. A.
    PHYSICAL REVIEW LETTERS, 2018, 121 (22)