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Two-dimensional epitaxial superconductor-semiconductor heterostructures: A platform for topological superconducting networks

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arxiv 1511.01127 v2 pith:MZEYFWKD submitted 2015-11-03 cond-mat.mes-hall

Two-dimensional epitaxial superconductor-semiconductor heterostructures: A platform for topological superconducting networks

classification cond-mat.mes-hall
keywords epitaxials-smtopologicalnetworkssysteminasinterfacemajorana
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Progress in the emergent field of topological superconductivity relies on synthesis of new material combinations, combining superconductivity, low density, and spin-orbit coupling (SOC). For example, theory [1-4] indicates that the interface between a one-dimensional (1D) semiconductor (Sm) with strong SOC and a superconductor (S) hosts Majorana modes with nontrivial topological properties [5-8]. Recently, epitaxial growth of Al on InAs nanowires was shown to yield a high quality S-Sm system with uniformly transparent interfaces [9] and a hard induced gap, indicted by strongly suppressed sub gap tunneling conductance [10]. Here we report the realization of a two-dimensional (2D) InAs/InGaAs heterostructure with epitaxial Al, yielding a planar S-Sm system with structural and transport characteristics as good as the epitaxial wires. The realization of 2D epitaxial S-Sm systems represent a significant advance over wires, allowing extended networks via top-down processing. Among numerous potential applications, this new material system can serve as a platform for complex networks of topological superconductors with gate-controlled Majorana zero modes [1-4]. We demonstrate gateable Josephson junctions and a highly transparent 2D S-Sm interface based on the product of excess current and normal state resistance.

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  1. Probing Cooper pair momentum by quasiparticle steering with planar Josephson junctions

    cond-mat.mes-hall 2026-07 accept novelty 6.0

    Quasiparticles eject from ballistic planar Josephson junctions at a phase-controlled angle scaling as √(Δ/μ), providing a kinematic probe of condensate momentum transfer.