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Development of high Tc (greater than 100 K) Bi, Tl and Y-based materials as superconducting circuit elementsExperimental work on this project over the last four years has resulted in establishing processing and characterization techniques for producing both the Bi-based and Tl-based superconductors in their high temperature (2223) forms. In the bulk, dry pressed form, maximum critical temperatures (Tc) of 108.2 K and 117.8 K, respectively, were measured. Results have further shown that the Bi and Tl-based superconducting materials in bulk form are noticeably different from the Y-based 123 material in that superconductivity is considerably harder to achieve, maintain, and reproduce. This is due primarily to the difficulty in obtaining the higher Tc phase in pure form since it commonly co-exists with other undesirable, lower Tc phases. In particular, it has been found that long processing times for calcining and firing (20 - 200 hrs.) and close control of temperatures which are very near the melting point are required in order to obtain higher proportions of the desirable, high Tc (2223) phase. Thus far, the BSCCO bulk materials has been prepared in uniaxially pressed, hot pressed, and tapecast form. The uniaxially pressed material has been synthesized by the mixed oxide, coprecipitation, and melt quenching processes. The tapecast and hot pressed materials have been prepared via the mixed oxide process. In addition, thick films of BSCCO (2223 phase) have been prepared by screen printing on to yttria and magnesia stabilized zirconia with only moderate success; i.e., superconductivity was achieved in these thick films, but the highest Tc obtained in these films was 89.0 K. The Tc's of the bulk hot pressed, tapecast, and screen printed thick film materials were found to be 108.2, 102.4, and 89.0 K, respectively.
Document ID
19940032595
Acquisition Source
Legacy CDMS
Document Type
Contractor Report (CR)
Authors
Haertling, Gene
(Clemson Univ. SC, United States)
Grabert, Gregory
(Clemson Univ. SC, United States)
Gilmour, Phillip
(Clemson Univ. SC, United States)
Date Acquired
September 6, 2013
Publication Date
July 15, 1994
Subject Category
Solid-State Physics
Report/Patent Number
NAS 1.26:196276
NASA-CR-196276
Report Number: NAS 1.26:196276
Report Number: NASA-CR-196276
Accession Number
94N37103
Funding Number(s)
CONTRACT_GRANT: NAG1-1108
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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