Hybrid Superconducting/Superconducting Mesoscopic Heterostructure Studied by Modified Ginzburg–Landau Equations

IF 1.9 Q3 PHYSICS, CONDENSED MATTER Condensed Matter Pub Date : 2023-12-01 DOI:10.3390/condmat8040104
Jesús González, Angélica Melendez, Luis Camargo
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Abstract

Studies involving vortexes in hybrid superconducting devices and their interactions with different components inside samples are important for reaching higher values of critical parameters in superconducting materials. The vortex distribution on each side of a sample with different fundamental parameters, such as temperature T, penetration depth λ, coherence length ξ, electron mass m, and the order parameter Ψ, may help to improve the superconducting properties. Thus, in this work, we used the modified Ginzburg–Landau theory to investigate a hybrid superconductor (HS), as well as to provide a highly tunable and adjustable theoretical tool for theoretically explaining the experimental results involving the HS in order to study the vortex behavior in superconductors of mesoscopic dimensions with extreme differences among their fundamental parameters. Therefore, we evaluated the influence of the HS on the vortex configuration and its effects on field-dependent magnetization. The results show that when the applied magnetic field H was increased, the diamagnetic response of the HS (Meissner effect) included additional jumps in magnetization, while diamagnetism continued to increase in the sample. In addition, the differences among parameters created an interface between both components, and two different magnitudes of supercurrent and vortex sizes caused less degradation of the local superconductivity, which increased the upper critical field. On the other hand, this type of HS with differences in parameters on both sides can be used to control the vortex movement in the selected sample of the superconducting region with more accuracy.
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用修正的金兹堡-朗道方程研究混合超导/超导介观异质结构
研究混合超导器件中的涡旋及其与样品内不同组分的相互作用,对于获得更高的超导材料临界参数值具有重要意义。在温度T、穿透深度λ、相干长度ξ、电子质量m和序参量Ψ等不同基本参数下,样品两侧的涡旋分布可能有助于改善超导性能。因此,在本工作中,我们利用修正的Ginzburg-Landau理论来研究混合超导体(HS),并为从理论上解释涉及HS的实验结果提供了一个高度可调谐和可调节的理论工具,以研究介观尺寸的超导体在其基本参数之间存在极端差异的涡旋行为。因此,我们评估了HS对涡旋结构的影响及其对场相关磁化的影响。结果表明,当外加磁场H增大时,HS的抗磁响应(迈斯纳效应)包括磁化强度的额外跳跃,同时样品的抗磁继续增加。此外,参数的差异在两个组分之间形成了一个界面,两种不同量级的超电流和涡旋尺寸对局部超导性的退化较小,这增加了上临界场。另一方面,这种两侧参数不同的HS可以更精确地控制超导区所选样品中的涡流运动。
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来源期刊
Condensed Matter
Condensed Matter PHYSICS, CONDENSED MATTER-
CiteScore
2.90
自引率
11.80%
发文量
58
审稿时长
10 weeks
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