SOLAR TECHNOLOGY FOR THE SYNTHESIS AND INVESTIGATION OF SUPERCONDUCTING CERAMICS Bi1,7Pb0,3Sr2Ca(n-1)CunOy(n = 3÷5)


https://doi.org/10.17073/1683-4518-2016-1-35-38

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Abstract

The technology is developed for the superconducting ceramics synthesis out of vitro-crystalline precursors Bi1,7Pb0,3Sr2Ca(n-1)CunOy(n = 3÷5), which in turn have been synthesized in melt under the influence of solar irradiation. The dependence of the superconducting phases forming on the temperature and time conditions is investigated. The amount of grain-oriented ceramics is estimated by means of Lotgering's factor in terms of the ceramic's heat treatment temperature. The superconducting transition temperature (Тс = 107÷138 К) and the high-temperature superconducting ceramics degree of stability (more than 7 years) were defined


About the Authors

D. D. Gulamova
Институт материаловедения НПО «Физика Солнце» Академии наук Республики Узбекистан, Ташкент
Uzbekistan


Zh. Sh. Turdiev
Институт материаловедения НПО «Физика Солнце» Академии наук Республики Узбекистан, Ташкент
Uzbekistan


S. Kh. Bobokulov
Институт материаловедения НПО «Физика Солнце» Академии наук Республики Узбекистан, Ташкент
Uzbekistan


Kh. Bakhronov
Институт материаловедения НПО «Физика Солнце» Академии наук Республики Узбекистан, Ташкент
Uzbekistan


A. Nebesnyi
Институт материаловедения НПО «Физика Солнце» Академии наук Республики Узбекистан, Ташкент
Uzbekistan


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Supplementary files

For citation: Gulamova D.D., Turdiev Z.S., Bobokulov S.K., Bakhronov K., Nebesnyi A. SOLAR TECHNOLOGY FOR THE SYNTHESIS AND INVESTIGATION OF SUPERCONDUCTING CERAMICS Bi1,7Pb0,3Sr2Ca(n-1)CunOy(n = 3÷5). NOVYE OGNEUPORY (NEW REFRACTORIES). 2016;1(1):35-38. https://doi.org/10.17073/1683-4518-2016-1-35-38

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