用Ginzburg-Landau双波段模型研究x = 0.2时NdFeAsO1-xFx上临界磁场(HC2(T)

IF 0.9 4区 物理与天体物理 Q4 PHYSICS, CONDENSED MATTER
Derejaw Gardew
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引用次数: 0

摘要

本研究利用Ginzburg-Landau (GL)双波段模型从理论上研究了铁基超导体NdFeAsO1-xFx (Nd-1111)的上临界磁场的温度依赖性。有效地绘制了垂直和平行上临界磁场的图形,以及上临界磁场与超导体Nd-1111温度的夹角关系。随着温度的升高,两个取向的上临界磁场逐渐减小,并在Nd-1111超导过渡温度处消失。此外,还给出了金兹堡-朗道参数、相干长度和穿透深度的图形表示和计算。上述GL参数随温度升高而增大,并在超导材料的47 K超导过渡温度处出现发散。同样,GL特性参数随温度变化的相图;它随着温度的升高而减少,在过渡温度时消失。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Investigation of Upper Critical Magnetic Field (HC2(T )) of NdFeAsO1–xFx by Ginzburg–Landau Two-Band Model at x = 0.2

Investigation of Upper Critical Magnetic Field (HC2(T )) of NdFeAsO1–xFx by Ginzburg–Landau Two-Band Model at x = 0.2

This study uses the Ginzburg–Landau (GL) two-band model to theoretically investigate temperature dependent of the upper critical magnetic field for iron-based superconductor NdFeAsO1–xFx (Nd-1111). Plotting of the figures for the perpendicular and parallel upper critical magnetic fields, as well as the angle dependent of the upper critical magnetic field versus the temperature of the superconductor Nd-1111, is effectively achieved. As the temperature rises, the two oriented upper critical magnetic fields progressively decrease and vanish at the superconducting transitional temperature of Nd-1111. In addition, a graphic representation and calculation of Ginzburg–Landau parameters coherence lengths and penetration depths are provided. The previously indicated GL parameters grow as temperature rises and diverge at the superconducting material’s 47 K superconducting transitional temperature. Similarly, the GL characteristic parameter’s phase diagram is displayed against temperature; it diminishes as temperature rises and disappears at its transitional temperature.

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来源期刊
Physics of the Solid State
Physics of the Solid State 物理-物理:凝聚态物理
CiteScore
1.70
自引率
0.00%
发文量
60
审稿时长
2-4 weeks
期刊介绍: Presents the latest results from Russia’s leading researchers in condensed matter physics at the Russian Academy of Sciences and other prestigious institutions. Covers all areas of solid state physics including solid state optics, solid state acoustics, electronic and vibrational spectra, phase transitions, ferroelectricity, magnetism, and superconductivity. Also presents review papers on the most important problems in solid state physics.
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