Robust and tunable topological Josephson junctions (TJJs) are highly desirable platforms for investigating the anomalous Josephson effect and topological quantum computation applications. Experimental demonstrations have been done in hybrid superconducting-two dimensional topological insulator (2DTI) platforms, sensitive to magnetic disorder and interactions with phonons and other electrons. In this work, we propose a robust and electrostatically tunable TJJ by combining the physics of the integer quantum Hall (IQH) regime and of superconductors. We provide analytical insights about the corresponding Andreev bound state spectrum, the Josephson current and the anomalous current. We demonstrate the existence of protected zero-energy crossings, that can be controlled through electrostatic external gates. This electrostatic tunability has a direct advantage to compensate for non-ideal interfaces and undesirable reflections that may occur in any realistic samples. TJJs in the IQH regime could be realized in graphene and other 2D materials. They are of particular relevance towards scalable and robust Andreev-qubit platforms, and also for efficient phase batteries. © 2023 authors. Published by the American Physical Society.

Topological Josephson junctions in the integer quantum Hall regime

Giovannetti Vittorio;Taddei Fabio;Braggio Alessandro
2023

Abstract

Robust and tunable topological Josephson junctions (TJJs) are highly desirable platforms for investigating the anomalous Josephson effect and topological quantum computation applications. Experimental demonstrations have been done in hybrid superconducting-two dimensional topological insulator (2DTI) platforms, sensitive to magnetic disorder and interactions with phonons and other electrons. In this work, we propose a robust and electrostatically tunable TJJ by combining the physics of the integer quantum Hall (IQH) regime and of superconductors. We provide analytical insights about the corresponding Andreev bound state spectrum, the Josephson current and the anomalous current. We demonstrate the existence of protected zero-energy crossings, that can be controlled through electrostatic external gates. This electrostatic tunability has a direct advantage to compensate for non-ideal interfaces and undesirable reflections that may occur in any realistic samples. TJJs in the IQH regime could be realized in graphene and other 2D materials. They are of particular relevance towards scalable and robust Andreev-qubit platforms, and also for efficient phase batteries. © 2023 authors. Published by the American Physical Society.
2023
Istituto Nanoscienze - NANO
Inglese
5
3
https://journals.aps.org/prresearch/abstract/10.1103/PhysRevResearch.5.033142
Josephson junction devices, Quantum computers, Quantum Hall effect, Quantum theory, Topology
Internazionale
5
info:eu-repo/semantics/article
262
Blasi, Gianmichele; Haack, Géraldine; Giovannetti, Vittorio; Taddei, Fabio; Braggio, Alessandro
01 Contributo su Rivista::01.01 Articolo in rivista
open
   Gate Tuneable Superconducting Quantum Electronics.
   SuperGate
   European Commission
   Horizon 2020 Framework Programme
   964398

   SuPErConducTing Radio-frequency switch for qUantuM technologies
   SPECTRUM
   European Commission
   Horizon Europe Framework Programme
   101057977

   International Exchanges between the UK and Italy
   Royal Society
   International Exchanges between the UK and Italy
   IEC R2 192166

   International Exchanges between the UK and Italy
   Royal Society
   International Exchanges between the UK and Italy
   IEC R2 212041
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/453887
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