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Gate-Defined Josephson Junctions in Magic-Angle Twisted Bilayer Graphene

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arxiv 2011.00011 v2 pith:3QITZIW6 submitted 2020-10-30 cond-mat.mes-hall cond-mat.str-elcond-mat.supr-con

Gate-Defined Josephson Junctions in Magic-Angle Twisted Bilayer Graphene

classification cond-mat.mes-hall cond-mat.str-elcond-mat.supr-con
keywords josephsonsuperconductingbilayergraphenemagic-angletwistedjunctionbands
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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In the past two years, magic-angle twisted bilayer graphene has emerged as a uniquely versatile experimental platform that combines metallic, superconducting, magnetic and insulating phases in a single crystal. In particular the ability to tune the superconducting state with a gate voltage opened up intriguing prospects for novel device functionality. Here we present the first demonstration of a device based on the interplay between two distinct phases in adjustable regions of a single magic-angle twisted bilayer graphene crystal. We electrostatically define the superconducting and insulating regions of a Josephson junction and observe tunable DC and AC Josephson effects. We show that superconductivity is induced in different electronic bands and describe the junction behaviour in terms of these bands, taking in consideration interface effects as well. Shapiro steps, a hallmark of the AC Josephson effect and therefore the formation of a Josephson junction, are observed. This work is an initial step towards devices where separate gate-defined correlated states are connected in single-crystal nanostructures. We envision applications in superconducting electronics and quantum information technology as well as in studies exploring the nature of the superconducting state in magic-angle twisted bilayer graphene.

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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.