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PART I. UPPER CRITICAL FIELDS AND SPAN STATES IN A-15 SUPERCONDUCTORS. PART II. VORTICES IN TWO-DIMENSIONAL SUPERCONDUCTORS.

机译:第一部分:A-15超导体中的上部临界场和跨度状态。第二部分二维超导体中的涡旋。

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摘要

I. The upper critical fields of niobium-tin and vanadium-silicon were measured and analyzed within the Ginzburg-Landau-Abrikosov-Gor'kov theory of type II superconductivity. The importance of many-body effects on the spin states of the superconductor is stressed, especially the renormalization of the Pauli paramagnetic limiting process. For niobium-tin failure to include renormalizations from the electronphonon interaction leads to too high spin-orbit scattering rates. For a similar A15 compounds vanadium-gallium failure to include renormalizations from the electron-electron interaction (spin-fluctuations and the related Stoner factor) leads to a measured upper critical field a zero temperature which is lower than theoretically allowed. Both of these renormalizations are shown to be consistent with the existing data on the transition temperatures, heat capacities, and spin susceptibilities. In addition the upper critical fields and the transition temperatures of niobium-tin were found to be functions of the resistivities up to 60 micro-ohm centimeters, no matter if the resistivity was caused by growing niobium-tin at non-optimal temperatures, making it off-stoichiometry, or introducing third elements such as aluminum or zirconium. The upper critical field a zero temperature is maximized at 300 kilo-oersted with a resistivity of 30 micro-ohm centimeters and a transition temperature of 16 K - almost 100 kilo-oersted greater than the single crystal which has the lowest resistivity and the highest transition temperature.; II. The phase transition of Kosterlitz and Thouless, in which bound pairs of positive and negative vortices dissociate at a characteristic temperature, is shown to be possible for thin superconducting films. The resistance in the superconductor caused by this dissociation is compared to that caused by thermally activated vortices and by current-induced phase slips.
机译:I.在II型超导的Ginzburg-Landau-Abrikosov-Gor'kov理论的基础上对铌-锡和钒-硅的上临界场进行了测量和分析。强调了多体效应对超导体自旋状态的重要性,尤其是保利顺磁极限过程的重新规范化。对于铌锡失效,包括电子声子相互作用的重新归一化会导致自旋轨道散射速率过高。对于类似的A15化合物,钒镓失效包括电子-电子相互作用(自旋涨落和相关的斯托纳因子)的重新归一化,导致测得的上临界场为零温度,该温度低于理论上的允许范围。这两个重新归一化都显示出与有关转变温度,热容量和自旋磁化率的现有数据一致。此外,发现铌锡的上临界场和转变温度是电阻率高达60微欧厘米的函数,无论电阻率是否是由于在非最佳温度下生长铌锡导致的,偏离化学计量,或引入第三种元素,例如铝或锆。零温度的最高临界场在300千欧时最大,电阻率为30微欧厘米,转变温度为16 K-比具有最低电阻率和最高转变的单晶高出近100千奥秒温度。;二。 Kosterlitz和Thouless的相变(在特征温度下,正涡旋和负涡旋的结合对解离)对于超导薄膜来说是可能的。将由这种解离引起的超导体中的电阻与由热激活的涡旋和电流引起的相移所引起的电阻进行比较。

著录项

  • 作者

    ORLANDO, TERRY PHILIP.;

  • 作者单位

    Stanford University.;

  • 授予单位 Stanford University.;
  • 学科 Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 1981
  • 页码 195 p.
  • 总页数 195
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 O49;
  • 关键词

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