Synthesis and Research of Critical Parameters of Bi-HTSC Ceramics Based on Glass Phase Obtained by IR Heating

IF 2.8 Q2 ENGINEERING, CHEMICAL ChemEngineering Pub Date : 2023-10-10 DOI:10.3390/chemengineering7050095
Daniyar Uskenbaev, Adolf Nogai, Alisher Uskenbayev, Kairatbek Zhetpisbayev, Eleonora Nogai, Pavel Dunayev, Ainur Zhetpisbayeva, Artur Nogai
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Abstract

In this paper influence of the excess Ca and Cu cations on the critical temperature (Tc) and critical transport current density (Jc) of high-temperature superconducting ceramics of the compositions (HTSC) Bi1.6Pb0.4Sr2Ca2.1Cu3.1Oy, Bi1.6Pb0.4Sr2Ca2.25Cu3.25Oy and Bi1.6Pb0.4Sr2Ca3Cu4Oy synthesized by the glass-ceramic method has been studied. The synthesis of superconducting ceramics was carried out on the basis of the glass phase, obtained by ultra-fast quenching of the melt. Melting of the mixture of starting components was carried out without the use of a crucible under the influence of IR radiant heating. Analysis of the elemental composition of the samples of the initial precursors showed a significant deviation from stoichiometry in oxygen (increase), as well as a decrease in calcium content. The synthesis of HTSC ceramics was carried out at a temperature of 849–850 °C for 96 h with intermediate grinding every 24 h. Studies of the phase composition of ceramic samples by X-ray diffraction have shown that HTSC ceramics consist only of a superconducting high-temperature phase Bi-2223. Studies of current-carrying characteristics by the four-point probe method according to the criterion of 1 µV/cm2 have shown that high-temperature superconducting ceramics of the compositions Bi1.6Pb0.4Sr2Ca2.1Cu3.1Oy, Bi1.6Pb0.4Sr2Ca2.25Cu3.25Oy and Bi1.6Pb0.4Sr2Ca3Cu4Oy have an increased density of critical transport current of 9.12 A/cm2, 7.62 A/cm2 and 7.26 A/cm2, respectively. At the same time, it was found that with a decrease in the content of Ca and Cu cations in HTSC ceramics, an increase in the critical current density is observed.
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红外加热玻璃相Bi-HTSC陶瓷关键参数的合成与研究
本文研究了过量Ca和Cu阳离子对高温超导陶瓷(HTSC) bi1.6 pb0.4 sr2ca2.1 cu3.10 oy、Bi1.6Pb0.4Sr2Ca2.25Cu3.25Oy和Bi1.6Pb0.4Sr2Ca3Cu4Oy合成的临界温度(Tc)和临界输运电流密度(Jc)的影响。超导陶瓷的合成是在玻璃相的基础上进行的,该玻璃相是通过对熔体进行超快淬火得到的。在红外辐射加热的影响下,在没有坩埚的情况下进行了起始组分混合物的熔化。对初始前体样品的元素组成分析表明,氧的化学计量有明显的偏差(增加),钙的含量也有所减少。HTSC陶瓷的合成在849 ~ 850℃的温度下进行了96 h的合成,每24 h进行一次中间研磨。通过x射线衍射对陶瓷样品的相组成进行了研究,表明HTSC陶瓷仅由超导高温相Bi-2223组成。以1µV/cm2为标准,用四点探针法研究了高温超导陶瓷的载流特性,结果表明,bi1.6 pb0.4 sr2ca2.1 cu3.10 oy、Bi1.6Pb0.4Sr2Ca2.25Cu3.25Oy和Bi1.6Pb0.4Sr2Ca3Cu4Oy组成的高温超导陶瓷的临界输运电流密度分别提高了9.12、7.62和7.26 A/cm2。同时发现,随着HTSC陶瓷中Ca、Cu阳离子含量的降低,临界电流密度增大。
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来源期刊
ChemEngineering
ChemEngineering Engineering-Engineering (all)
CiteScore
4.00
自引率
4.00%
发文量
88
审稿时长
11 weeks
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