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首页> 外文期刊>Physical Review. B, Condensed Matter >Phenomenology of the soft gap, zero-bias peak, and zero-mode splitting in idealMajorana nanowires
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Phenomenology of the soft gap, zero-bias peak, and zero-mode splitting in idealMajorana nanowires

机译:Dealmmajorana纳米线中的软隙,零偏置峰值和零模式分裂的现象学

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摘要

We theoretically consider the observed soft gap in the proximity-induced superconducting state of semiconductor nanowires in the presence of spin-orbit coupling, Zeeman spin splitting, and tunneling leads, but in the absence of any extrinsic disorder (i.e., an ideal system). We critically consider the effects of three distinct intrinsic physical mechanisms (tunnel barrier to normal leads, temperature, and dissipation) on the phenomenology of the gap softness in the differential conductance spectroscopy of the normal-superconductor junction as a function of spin splitting and chemical potential. We find that all three mechanisms individually can produce a soft gap, leading to calculated conductance spectra qualitatively mimicking experimental results. We also show through extensive numerical simulations that the phenomenology of the soft gap is intrinsically tied to the broadening and the height of the Majorana zero-mode-induced differential conductance peak above the topological quantum phase transition point with both the soft gap and the quality of the Majorana zero mode being simultaneously affected by tunnel barrier, temperature, and dissipation. We establish that the Majorana zero-mode splitting oscillations can be suppressed by temperature or dissipation (in a similar manner) but not by the tunnel barrier. Since all three mechanisms (plus disorder, not considered in the current work) are likely to be present in any realistic nanowires, discerning the effects of various mechanisms is difficult, necessitating detailed experimental data as a function of all the system parameters, some of which (e.g., dissipation, chemical potential, tunnel barrier) may not be known experimentally. While the tunneling-induced soft-gap behavior is benign with no direct adverse effect on the Majorana topological properties with the zero-bias peak remaining quantized at 2e~2/h, the soft gap induced by finite temperature and/or finite dissipation is detrimental to topological properties and must be avoided as much as possible.
机译:理论上,在旋转轨道耦合,塞曼旋转分裂和隧道引线存在下,理论上考虑了在近距离诱导的半导体纳米线的超导状态中观察到的软隙,但在不存在任何外部疾病(即理想的系统)。根据旋转分裂和化学势的函数,我们将三个不同的内在物理机制(隧道屏障对正常引线,温度和耗散)的影响施加对正常超导结的差分传导光谱中的间隙柔软度的效果。 。我们发现所有三种机制都可以单独产生软隙,导致计算的电导谱定性模拟实验结果。我们还通过广泛的数值模拟表明,软间隙的现象学本质上与拓宽零模式诱导的差分电导峰值高于拓扑量子相变点,既具有柔软的差距和质量Majorana Zero模式同时受隧道屏障,温度和耗散影响。我们建立了Majorana零模式分割振荡,可以通过温度或耗散(以类似的方式)来抑制,而不是隧道屏障。由于在任何现实纳米线中可能存在所有三种机制(在当前工作中不考虑的情况下,不考虑,因此难以识别各种机制的效果,因此需要详细的实验数据作为所有系统参数的功能,其中一些(例如,耗散,化学势,隧道屏障)可能无法通过实验知道。虽然隧道诱导的软隙行为是良性的,但对于Majorana拓扑特性没有直接不利影响,零偏压峰值在2E〜2 / h处剩余量化,通过有限温度和/或有限散热诱导的软隙是有害的拓扑特性,必须尽可能避免。

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  • 来源
    《Physical Review. B, Condensed Matter》 |2017年第6期|054520.1-054520.18|共18页
  • 作者单位

    Condensed Matter Theory Center and Joint Quantum Institute and Station Q Maryland Department of Physics University of Maryland College Park Maryland 20742-4111 USA;

    Condensed Matter Theory Center and Joint Quantum Institute and Station Q Maryland Department of Physics University of Maryland College Park Maryland 20742-4111 USA;

    Condensed Matter Theory Center and Joint Quantum Institute and Station Q Maryland Department of Physics University of Maryland College Park Maryland 20742-4111 USA;

    Condensed Matter Theory Center and Joint Quantum Institute and Station Q Maryland Department of Physics University of Maryland College Park Maryland 20742-4111 USA;

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