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Finite-size effects in a nanowire strongly coupled to a thin superconducting shell

机译:在纳米线中的有限尺寸效果强耦合到薄超导壳体

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We study the proximity effect in a one-dimensional nanowire strongly coupled to a finite superconductor with a characteristic size which is much shorter than its coherence length. Such geometries have become increasingly relevant in recent years in the experimental search for Majorana fermions with the development of thin epitaxial Al shells which form a very strong contact with either InAs or InSb nanowires. So far, however, no theoretical treatment of the proximity effect in these systems has accounted for the finite size of the superconducting film. We show that the finite-size effects become very detrimental when the level spacing of the superconductor greatly exceeds its energy gap. Without any fine tuning of the size of the superconductor (on the scale of the Fermi wavelength), the tunneling energy scale must be larger than the level spacing in order to reach the “hard gap” regime which is seen ubiquitously in the experiments. However, in this regime, the large tunneling energy scale induces a large shift in the effective chemical potential of the nanowire and pushes the topological phase transition to magnetic field strengths which exceed the critical field of Al.
机译:我们研究了一维纳米线中的邻近效应,其强烈地耦合到有限超导体,其特征尺寸远短于其相干长度。近年来,这种几何形状在近年来在Majorana Fermions的实验中越来越相关,随着薄的外延Al壳体,形成与INAS或INSB纳米线非常强的接触。然而,到目前为止,没有理论处理这些系统中的接近效果已经占超导膜的有限尺寸。我们表明,当超导体的水平间距大大超过其能量隙时,有限尺寸的效果变得非常有害。没有超导体的大小的任何微量调谐(在费米波长的规模上),隧道能量秤必须大于水平间距,以便到达在实验中普遍存在的“硬隙”的状态。然而,在该制度中,大的隧道能量尺度在纳米线的有效化学电位中引起大的偏移,并将拓扑相过渡推向超过Al的临界场的磁场强度。

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  • 来源
    《Physical Review. B, Condensed Matter 》 |2017年第12期| 125426.1-125426.12| 共12页
  • 作者单位

    Department of Physics University of Basel Klingelbergstrasse 82 CH-4056 Basel Switzerland;

    Department of Physics University of Basel Klingelbergstrasse 82 CH-4056 Basel Switzerland;

    Department of Physics University of Basel Klingelbergstrasse 82 CH-4056 Basel Switzerland;

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