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Induced spectral gap and pairing correlations from superconducting proximity effect

机译:超导邻近效应引起的谱隙和配对相关性

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We theoretically consider superconducting proximity effect, using the Bogoliubov-de Gennes (BdG) theory, in heterostructure sandwich-type geometries involving a normal s-wave superconductor and a nonsuperconducting material with the proximity effect being driven by Cooper pairs tunneling from the superconducting slab to the nonsuperconducting slab. Applications of the superconducting proximity effect may rely on an induced spectral gap or induced pairing correlations without any spectral gap. We clarify that in a nonsuperconducting material the induced spectral gap and pairing correlations are independent physical quantities arising from the proximity effect. This is a crucial issue in proposals to create topological superconductivity through the proximity effect. Heterostructures of three-dimensional topological insulator (TI) slabs on conventional s-wave superconductor (SC) substrates provide a platform, with proximity-induced topological superconductivity expected to be observed on the "naked" top surface of a thin TI slab. We theoretically study the induced superconducting gap on this naked surface. In addition, we compare against the induced spectral gap in heterostructures of SC with a normal metal or a semiconductor with strong spin-orbit coupling and a Zeeman splitting potential (another promising platform for topological superconductivity). We find that for any model for the non-SC metal (including metallic TI) the induced spectral gap on the naked surface decays as L~(-3) as the thickness (L) of the non-SC slab is increased in contrast to the slower 1/L decay of the pairing correlations. Our distinction between proximity-induced spectral gap (with its faster spatial decay) and pairing correlation (with its slower spatial decay) has important implications for the currently active search for topological superconductivity and Majorana fermions in various superconducting heterostructures.
机译:在理论上,我们使用Bogoliubov-de Gennes(BdG)理论考虑超导邻近效应,这种异质结构夹心类型的几何结构涉及正常的s波超导体和非超导材料,其中的邻近效应是由Cooper对从超导平板隧穿到非导体而驱动的。非超导平板。超导邻近效应的应用可能依赖于感应光谱间隙或感应配对相关性而没有任何光谱间隙。我们阐明,在非超导材料中,感应光谱间隙和配对相关性是由邻近效应引起的独立物理量。这是通过邻近效应创建拓扑超导性的提案中的关键问题。常规s波超导体(SC)基板上的三维拓扑绝缘体(TI)平板的异质结构提供了一个平台,有望在薄TI平板的“裸”顶表面上观察到邻近感应拓扑超导性。我们从理论上研究了在该裸露表面上引起的超导间隙。此外,我们将与具有强自旋轨道耦合和塞曼分裂势(另一有希望的拓扑超导性平台)的普通金属或半导体的SC异质结构中的感应光谱间隙进行比较。我们发现,对于非SC金属(包括金属TI)的任何模型,随着非SC板坯厚度(L)的增加,裸露表面上的感应光谱隙随着L〜(-3)衰减。配对相关性的1 / L衰减变慢。我们在邻近感应谱隙(具有更快的空间衰减)和配对相关性(具有更慢的空间衰减)之间的区别,对当前积极寻求拓扑超导性和各种超导异质结构中的马约拉纳费米子具有重要意义。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2016年第12期|125304.1-125304.12|共12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, USA;

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

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

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