Title :
Mechanisms controlling the in-situ formation and superconducting properties of Bi-Sr-Ca-Cu-O films
Author :
Kampwirth, R.T. ; Grace, J.M. ; Miller, D.J. ; McDonald, D.B. ; Gray, K.E. ; Reiten, M. ; Ascolese, M. ; Latvakoski, H.
Author_Institution :
Argonne Nat. Lab., IL, USA
fDate :
3/1/1991 12:00:00 AM
Abstract :
The authors report on the in-situ formation of superconducting films of Bi2Sr2CaCu2Ox and Bi2Sr2Ca2Cu3Ox using composite-target sputtering with substrate temperatures, Ts , significantly less than those required for postannealed films. Specifically, superconducting films of BSCCO 2212 and 2223 can be sputtered onto single-crystal MgO substrates by an in-situ processing technique with Tczero´s as high as 64 K and a very pronounced c-axis orientation without the need for epitaxy. Bi loss in the films can be reduced by biasing the substrate negative or increasing the total system pressure. This should provide greater control over film properties and the possibility of sputter deposition at higher substrate temperatures to see if Tczero´s close to bulk can be achieved. The microstructure generally reveals a smooth matrix, with submicron to micron-sized particles protruding from it. These particles increase in size and frequency with increasing Ts and appear to be a Bi-Sr-Ca-oxide mixture. It is suggested that oxygen resputtering of the film may play a role similar to that reported for YBa2Cu3O7-x (YBCO)
Keywords :
bismuth compounds; calcium compounds; crystal microstructure; high-temperature superconductors; sputter deposition; strontium compounds; superconducting thin films; superconducting transition temperature; 2223; 64 K; BSCCO 2212; Bi loss; Bi-Sr-Ca-Cu-O films; Bi2Sr2Ca2Cu3Ox ; Bi2Sr2CaCu2Ox; MgO; c-axis orientation; composite-target sputtering; high temperature superconductors; in-situ formation; in-situ processing technique; micron-sized particles; microstructure; resputtering; single-crystal MgO substrates; smooth matrix; submicron particles; substrate temperatures; superconducting properties; Bismuth compounds; Epitaxial growth; Frequency; Microstructure; Sputtering; Strontium; Substrates; Superconducting epitaxial layers; Superconducting films; Temperature control;
Journal_Title :
Magnetics, IEEE Transactions on