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      Signatures of topological Josephson junctions

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          Abstract

          Quasiparticle poisoning and diabatic transitions may significantly narrow the window for the experimental observation of the \(4\pi\)-periodic \(dc\) Josephson effect predicted for topological Josephson junctions. Here, we show that switching current measurements provide accessible and robust signatures for topological superconductivity which persist in the presence of quasiparticle poisoning processes. Such measurements provide access to the phase-dependent subgap spectrum and Josephson currents of the topological junction when incorporating it into an asymmetric SQUID together with a conventional Josephson junction with large critical current. We also argue that pump-probe experiments with multiple current pulses can be used to measure the quasiparticle poisoning rates of the topological junction. The proposed signatures are particularly robust, even in the presence of Zeeman fields and spin-orbit coupling, when focusing on short Josephson junctions. Finally, we also consider microwave excitations of short topological Josephson junctions which may complement switching current measurements.

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          Signatures of Majorana fermions in hybrid superconductor-semiconductor nanowire devices

          Majorana fermions are particles identical to their own antiparticles. They have been theoretically predicted to exist in topological superconductors. We report electrical measurements on InSb nanowires contacted with one normal (Au) and one superconducting electrode (NbTiN). Gate voltages vary electron density and define a tunnel barrier between normal and superconducting contacts. In the presence of magnetic fields of order 100 mT we observe bound, mid-gap states at zero bias voltage. These bound states remain fixed to zero bias even when magnetic fields and gate voltages are changed over considerable ranges. Our observations support the hypothesis of Majorana fermions in nanowires coupled to superconductors.
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            Observation of Majorana Fermions in Ferromagnetic Atomic Chains on a Superconductor

            Majorana fermions are predicted to localize at the edge of a topological superconductor, a state of matter that can form when a ferromagnetic system is placed in proximity to a conventional superconductor with strong spin-orbit interaction. With the goal of realizing a one-dimensional topological superconductor, we have fabricated ferromagnetic iron (Fe) atomic chains on the surface of superconducting lead (Pb). Using high-resolution spectroscopic imaging techniques, we show that the onset of superconductivity, which gaps the electronic density of states in the bulk of the Fe chains, is accompanied by the appearance of zero energy end states. This spatially resolved signature provides strong evidence, corroborated by other observations, for the formation of a topological phase and edge-bound Majorana fermions in our atomic chains.
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              21 cm cosmology in the 21st century

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                Author and article information

                Journal
                2016-04-14
                2016-05-04
                Article
                10.1103/PhysRevB.94.085409
                1604.04287
                2d9c7273-0623-4c98-8e9a-3439880954c0

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

                History
                Custom metadata
                23 pages, 13 figures, Correct mistakes in the admittance calculation of the previous version. Add comment on the effects from the outer Majoranas. Add new references
                cond-mat.mes-hall

                Nanophysics
                Nanophysics

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