DocumentCode
1548066
Title
Reel-to-reel continuous deposition of epitaxial CeO/sub 2/ buffer layers on biaxially textured Ni tapes by electron beam evaporation
Author
Cui, X. ; List, F.A. ; Kroeger, D.M. ; Goyal, A. ; Lee, D.F. ; Mathis, J. ; Specht, E.D. ; Martin, P.M. ; Feenstra, R. ; Verebelyi, D.T. ; Christen, D.K. ; Paranthaman, M.
Author_Institution
Div. of Metals & Ceramics, Oak Ridge Nat. Lab., TN, USA
Volume
9
Issue
2
fYear
1999
fDate
6/1/1999 12:00:00 AM
Firstpage
1967
Lastpage
1970
Abstract
A reel-to-reel, electron beam evaporation system has been developed to continuously deposit epitaxial CeO/sub 2/ and other oxide buffer layers on meter-long lengths of biaxially textured Ni tapes. The deposition system includes two interconnected electron beam evaporation chambers and a chamber in which as-rolled Ni tape is in situ annealed to develop biaxial texture. An integral reel-to-reel system with tension control enables motion of the tape with little or no plastic deformation. When depositing epitaxial oxides on Ni, the formation of unfavorably oriented NiO is difficult to avoid. Oxide free, {100}<100> oriented Ni tapes are prepared by control of the partial pressures of H/sub 2/, H/sub 2/O and O/sub 2/ during Ni annealing. X-ray /spl phi/-scans have been performed as a function of length to determine the crystallographic consistency of the epitaxial CeO/sub 2/ over length. Results of SEM examinations of the CeO/sub 2/ buffer layer microstructure are presented. Results for YBCO films deposited on short segments of these buffered substrates are summarized.
Keywords
cerium compounds; electron beam deposition; epitaxial layers; insulating thin films; vapour phase epitaxial growth; CeO/sub 2/; CeO/sub 2/ buffer layer microstructure; Ni; biaxially textured Ni tapes; electron beam evaporation; epitaxial CeO/sub 2/ buffer layers; interconnected electron beam evaporation chambers; reel-to-reel continuous deposition; tension control; Annealing; Buffer layers; Control systems; Crystallography; Electron beams; Microstructure; Motion control; Plastics; Pressure control; Yttrium barium copper oxide;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/77.784847
Filename
784847
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