• DocumentCode
    1071272
  • Title

    Atomic-Scale Chemical-Analyses of Niobium for Superconducting Radio-Frequency Cavities

  • Author

    Yoon, Kevin E. ; Seidman, David N. ; Bauer, Pierre ; Boffo, Christian ; Antoine, Claire

  • Author_Institution
    Northwestern Univ., Evanston
  • Volume
    17
  • Issue
    2
  • fYear
    2007
  • fDate
    6/1/2007 12:00:00 AM
  • Firstpage
    1314
  • Lastpage
    1317
  • Abstract
    The key technology for the linear collider is the high gradient superconducting radio-frequency (SRF) cavity, approximately 20,000 of which will make up the accelerator. The preferred technology is to make the cavities from high-purity niobium-sheet. From the RF superconductivity point-of-view, the interface between the native niobium oxide on the surface of the cavity and near sub-surface region is the most important one. Superconducting properties of cavities depend on the chemistry and microstructure of the surface oxide and the concentration and location of impurity elements. Little is known, however, about this information and the effect of low-temperature baking on the surface region. Atom-probe tomography (APT) provides chemical information of the analysed materials on an atomic scale utilizing time-of-flight (TOF) mass spectrometry, with the field evaporation of materials permitting atom-by-atom dissection. We employ a 3-D local-electrode atom-probe (LEAP) tomography to analyse the chemistry of niobium tips, from the surface niobium oxide to underlying bulk niobium.
  • Keywords
    atom-atom reactions; chemical analysis; crystal microstructure; niobium; superconducting cavity resonators; superconducting materials; time of flight mass spectrometers; 3D local-electrode; RF superconductivity; atom-by-atom dissection; atom-probe tomography; atomic-scale chemical-analyses; high-purity niobium-sheet; linear collider; low-temperature baking; microstructure; superconducting radio-frequency cavities; surface oxide; time-of-flight mass spectrometry; Atomic measurements; Chemical analysis; Chemical technology; Chemistry; Linear accelerators; Microstructure; Niobium; Radio frequency; Superconductivity; Tomography; Atom-probe tomography (APT); niobium; oxygen; superconducting accelerator cavities;
  • fLanguage
    English
  • Journal_Title
    Applied Superconductivity, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1051-8223
  • Type

    jour

  • DOI
    10.1109/TASC.2007.898059
  • Filename
    4277833