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Superconducting proximity effect in single-crystal nanowires.

机译:单晶纳米线中的超导邻近效应。

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摘要

This dissertation describes experimental studies of the superconducting proximity effect in single-crystal Pb, Sn, and Zn nanowires of lengths up to 60 microm, with both ends of the nanowires in contact with macroscopic electrodes that are either superconducting (Sn or Pb) or non-superconducting (Au). The Pb, Sn, and Zn nanowires are fabricated using a template-based electrochemical deposition method. Electric contacts to the nanowires are formed in situ during electrochemical growth. This method produces high transparency contacts between a pair of macroscopic electrodes and a single nanowire, circumventing the formation of oxide or other poorly conducting interface layers. Extensive analyses of the structure and the composition of the nanowire samples are presented to demonstrate that (1) the nanowires are single crystalline and (2) the nanowires are clean without any observable mixing of the materials from the electrodes.;The nanowires being investigated are significantly longer than the nanowires with which electrode-induced superconductivity was previously investigated by other groups. We have observed that in relatively short (∼6 microm) Sn and Zn nanowires, robust superconductivity is induced at the superconducting transition temperatures of the electrodes. When Sn and Pb nanowires are in contact with a pair of Au electrodes, superconductivity is suppressed completely. For nanowires of 60 microm in length, although the suppression of superconductivity by Au electrodes is only partial, the induced superconductivity at the higher transition temperatures of the electrodes remains full and robust. Therefore, an anomalous superconducting proximity effect has been observed on a length scale which far exceeds the expected length based on the existing theories of the proximity effect. The measured current-voltage characteristic of the nanowires reveals more details such as hysteresis, multiple Andreev reflection, and phase-slip centers. An interesting relation between the proximity effect and the residual-resistance-ratio of the nanowires has also been observed. Possible mechanisms for this proximity effect are discussed based on these experimental observations.
机译:这篇论文描述了对长度高达60微米的单晶Pb,Sn和Zn纳米线的超导邻近效应的实验研究,纳米线的两端都与超导(Sn或Pb)或非超导的宏观电极接触。 -超导(Au)。使用基于模板的电化学沉积方法制造Pb,Sn和Zn纳米线。与纳米线的电接触在电化学生长过程中原位形成。该方法在一对宏观电极和一条纳米线之间产生了高透明的接触,从而避免了氧化物或其他导电不良的界面层的形成。提出了对纳米线样品的结构和成分的广泛分析,以证明(1)纳米线是单晶的;(2)纳米线是干净的,没有任何可观察到的来自电极的材料混合。;正在研究的纳米线远比其他小组先前研究过的纳米线长。我们已经观察到,在相对较短(约6微米)的Sn和Zn纳米线中,在电极的超导转变温度下会产生强大的超导性。当Sn和Pb纳米线与一对Au电极接触时,超导性被完全抑制。对于长度为60微米的纳米线,尽管仅通过部分Au电极抑制了超导性,但在电极的较高转变温度下诱导的超导性仍然保持完整且稳定。因此,基于现有的邻近效应理论,已经观察到异常超导邻近效应的长度尺度远远超过预期长度。纳米线的测量电流-电压特性揭示了更多细节,例如磁滞,多次安德列夫反射和相移中心。还已经观察到纳米线的邻近效应和残余电阻比之间的有趣关系。基于这些实验观察结果,讨论了这种邻近效应的可能机制。

著录项

  • 作者

    Liu, Haidong.;

  • 作者单位

    Texas A&M University.;

  • 授予单位 Texas A&M University.;
  • 学科 Engineering Electronics and Electrical.;Engineering Materials Science.;Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 101 p.
  • 总页数 101
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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