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Disentangling Majorana fermions from topologically trivial low-energy states in semiconductor Majorana wires

机译:从半导体马约拉纳线的拓扑琐碎的低能态中解开马约拉那费米子

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摘要

Majorana fermions (MFs) are predicted to occur as zero-energy bound states in semiconductor nanowire-superconductor structures. However, in the presence of disorder or smooth confining potentials, these structures can also host nontopological nearly zero-energy states. Here, we demonstrate that the MFs and the nearly zero topologically trivial states have different characteristic signatures in a tunneling conductance measurement, which allows to clearly discriminate between them. We also show that low-energy nontopological states can strongly hybridize with metallic states from the leads, which generates the smooth background that characterizes the soft superconducting gap measured in tunneling experiments and produces an additional decoherence mechanism for the Majorana mode. Our results pave the way for the conclusive identification of MFs in a solid state system and provide directions for minimizing quantum decoherence in Majorana wires.
机译:预测马约拉纳费米子(MFs)在半导体纳米线超导体结构中以零能结合态出现。但是,在存在无序或平滑限制电势的情况下,这些结构也可能具有非拓扑近零能量状态。在这里,我们证明了在隧道电导测量中,MF和几乎零的拓扑琐碎状态具有不同的特征标记,从而可以清楚地区分它们。我们还表明,低能非拓扑态可以与引线中的金属态强烈杂交,从而产生平滑的背景,该背景表征了在隧道实验中测得的软超导间隙,并为Majorana模式产生了额外的去相干机制。我们的研究结果为固态系统中MF的最终鉴定铺平了道路,并为最大程度降低马约拉纳线中的量子退相干提供了指导。

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