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首页> 外文期刊>Journal of Crystallization Process and Technology >Ceramic Nanocrystalline Superconductor Gadolinium Barium Copper Oxide (GdBaCuO) at Different Treating Temperatures
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Ceramic Nanocrystalline Superconductor Gadolinium Barium Copper Oxide (GdBaCuO) at Different Treating Temperatures

机译:陶瓷纳米晶超导体Ga钡铜氧化物(GdBaCuO)在不同的处理温度下

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With the discovery of high-TC superconducting materials like Yttrium Barium Cupric Oxide, Bismuth Strontium Calcium Copper Oxide and Thallium Calcium Barium Copper Oxide, tremendous interest has developed over the past two years in understanding these materials as well as utilizing them in a variety of applications. The thin films of these materials are expected to play an important role in the area of microelectronics, especially for interconnects in integrated circuits, Josephson junctions, magnetic field sensors and optical detectors. Here, the authors designed a new nanocrystalline ceramic type II high-TC superconductor, Gadolinium Barium Copper Oxide (GdBaCuO/GBCO). The GBCO perovskite phase structure was prepared by the conventional solid state thermochemical reaction technique involving mixing, milling, calcination and sintering. In GBCO system, the method for controlling microstructure and superconducting state is related to oxygen content consideration because small changes in oxygen concentration can often?lead to huge change in Tc. In order to show the viability of the proposed method, super-conducting powder was prepared in special furnace. The sample was analyzed by X-Ray Diffraction (XRD), an indispensible non-destructive tool for structural materials characterization and quality control which makes use of the Debye-Scherrer method. The comparison of XRD results with JCPDS files confirmed the orthorhombic structure of the sample. Micro-structural features are studied using Scanning Electron Microscopy (SEM) which revealed that its particle size is in the nanometer range. It also confirmed the calculated value of particle size from Debye Scherrer’s formula. EDX plot shows the presence of all the constituents. X-ray instrumental peak broadening analysis was used to evaluate the size and lattice strain by the Williamson-Hall Plot method.
机译:随着诸如钇钇钡铜氧化物,铋锶钙铜氧化物和T钙钡铜氧化物的高TC超导材料的发现,在过去的两年中,人们对理解这些材料以及将其用于各种应用产生了极大的兴趣。 。这些材料的薄膜有望在微电子学领域发挥重要作用,特别是在集成电路,约瑟夫森结,磁场传感器和光学检测器的互连中。在这里,作者设计了一种新型的纳米晶陶瓷II型高TC超导体,d钡氧化铜(GdBaCuO / GBCO)。 GBCO钙钛矿相结构是通过常规的固态热化学反应技术制备的,该技术涉及混合,研磨,煅烧和烧结。在GBCO系统中,控制微结构和超导状态的方法与氧含量的考虑有关,因为氧浓度的微小变化通常会导致Tc的巨大变化。为了证明所提方法的可行性,在专用炉中制备了超导粉末。通过X射线衍射(XRD)对样品进行分析,XRD是使用Debye-Scherrer方法进行结构材料表征和质量控制的必不可少的非破坏性工具。 XRD结果与JCPDS文件的比较证实了样品的正交结构。使用扫描电子显微镜(SEM)研究了微结构特征,结果表明其粒径在纳米范围内。它也根据Debye Scherrer的公式确定了粒径的计算值。 EDX图显示了所有成分的存在。 X射线仪器峰展宽分析用于通过Williamson-Hall Plot方法评估尺寸和晶格应变。

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