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Superconducting properties and vortex dynamics of bismuth strontium calcium copper oxide nanoribbons with and without periodic array of nanoscale holes.

机译:具有和不具有周期性纳米孔阵列的铋锶钙氧化铜纳米带的超导性能和涡旋动力学。

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摘要

The distinguishing features of high-temperature superconducting materials are the dynamics of vortex matter in the mixed state which are greatly affected by the high anisotropy and the Josephson coupling between layers. Experiments have focused on investigating melting and dynamic phases of vortex matter with random pinning. However, the advancements in sample preparation techniques have made it possible to investigate the vortex matter with periodic pinnings, since it can serve as a model system to study periodic elastic media such as electron crystals driven on substrates with arrays of defects. It also offers the possibility to increase the critical current of a superconductor through a matching effect which represents itself as peaks (dips) in the field dependences of the critical current (magnetoresisance). This effect is due to the enhanced pinning strength at matching fields where the density of the flux quanta is equal to or multiple times that of the pins. This dissertation reports investigation on the dynamics of vortex matter with periodic pinning array by utilizing BSCCO-2212 crystalline nanoribbons containing periodic arrays of nanoscale holes. Systematic transport measurements reveal the existence of possible intermediate phases of a soft solid and/or a mixture of solid and liquid during melting for the melting transition from solid to a pure liquid. The results of this research demonstrate that the matching effect can be an effective tool in revealing the nature of various vortex phases during melting transition.;In addition, anomalous resistive peaks below Tc and the effect of magnetic field orientation on superconductivity of BSCCO-2212 nanoribbons with array of nanoscale holes are also investigated. Angle-dependent magnetoresistances are scaled as H=Hthetacostheta. Therefore, only the perpendicular component of the magnetic field affects the superconductivity. Moreover, layers in BSCCO nanoribbons are lying in the a-b plane parallel to each other. Moreover, at large currents and fields, the resistance shows a non-monotonic dependence on temperature, even showing values that are higher than the normal state resistance for certain ranges of parameters. Observed behavior is attributed to the brick-wall morphology of the nanoribbons leading to a competition between normal and superconductive tunneling that is known to take place in granular superconductive systems.
机译:高温超导材料的显着特征是混合态的旋涡物质的动力学,这在很大程度上受到高各向异性和层间约瑟夫森耦合的影响。实验着重于研究随机钉扎的涡旋物质的熔化和动态相。但是,样品制备技术的进步使人们有可能用周期性钉扎法研究涡旋物质,因为它可以用作研究周期性弹性介质(例如在带有缺陷阵列的基板上驱动的电子晶体)的模型系统。它还提供了通过匹配效应来增加超导体的临界电流的可能性,该匹配效应在临界电流的场相关性(磁阻)中表现为峰值(下降)。这种效果是由于在匹配区域的钉扎强度提高了,在这些匹配区域中,磁通量的密度等于或大于引脚的密度。本文利用含有周期性纳米级孔阵列的BSCCO-2212晶体纳米带,利用周期性钉扎阵列对涡旋物质的动力学进行了研究。系统的运输测量揭示了在熔融期间从固体到纯液体的熔融转变中可能存在软固体和/或固体和液体的混合物的中间相。研究结果表明,匹配效应可以有效揭示熔融转变过程中各种旋涡相的性质。此外,低于Tc的反常电阻峰以及磁场取向对BSCCO-2212纳米带的超导性的影响还研究了具有纳米级孔阵列的材料。角度相关的磁阻按H = Hthetacostheta缩放。因此,仅磁场的垂直分量会影响超导性。此外,BSCCO纳米带中的层位于彼此平行的a-b平面中。此外,在大电流和大磁场下,电阻显示出对温度的非单调依赖性,甚至在某些参数范围内显示出高于正常状态电阻的值。观察到的行为归因于纳米带的砖墙形态,导致正常和超导隧穿之间的竞争,这在粒状超导系统中发生。

著录项

  • 作者

    Avci, Sevda.;

  • 作者单位

    Northern Illinois University.;

  • 授予单位 Northern Illinois University.;
  • 学科 Nanoscience.;Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 120 p.
  • 总页数 120
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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