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Spin-Degeneracy Breaking and Parity Transitions in Three-Terminal Josephson Junctions

M. Coraiola, D. Z. Haxell, Deividas Sabonis, Manuel Hinderling, Sofieke C. ten Kate, Erik Cheah, F. Krizek, R. Schott, W. Wegscheider, Fabrizio Nichele

2024Physical Review X14 citationsDOIOpen Access PDF

Abstract

Hybrid Josephson junctions (JJs) realized in superconductor-semiconductor heterostructures host fermionic modes known as Andreev bound states (ABSs). In these structures, a promising and yet unexplored avenue for harnessing spin and parity degrees of freedom is offered by JJs with three or more superconducting terminals, where phase-induced spin polarization and transitions of the ground state to an odd parity were predicted to arise. Here we spectroscopically probe the two-dimensional band structure of ABSs in a phase-controlled <a:math xmlns:a="http://www.w3.org/1998/Math/MathML" display="inline"><a:mrow><a:mi>InAs</a:mi><a:mo>/</a:mo><a:mi>Al</a:mi></a:mrow></a:math> three-terminal JJ. Andreev bands show signatures of spin-degeneracy breaking, with level splitting in excess of <c:math xmlns:c="http://www.w3.org/1998/Math/MathML" display="inline"><c:mo>∼</c:mo><c:mrow><c:mn>9</c:mn><c:mtext> </c:mtext><c:mtext> </c:mtext><c:mi>GHz</c:mi></c:mrow></c:math>, and zero-energy crossings associated to ground state fermion parity transitions. Spin splitting and parity transitions are enabled and controlled by locally applied magnetic fluxes, in the absence of Zeeman effect or Coulomb blockade. Our results underscore the potential of multiterminal hybrid devices for phase engineering ABSs, with significant implications for spin- and parity-based quantum devices. Published by the American Physical Society 2024

Topics & Concepts

PhysicsZeeman effectParity (physics)Condensed matter physicsJosephson effectSuperconductivityBound stateGround stateQuantum mechanicsMagnetic fieldPhysics of Superconductivity and MagnetismQuantum and electron transport phenomenaTopological Materials and Phenomena
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