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Spin-split Andreev levels in a quantum dot with superconducting leads: Andreev spin qubit

ORAL

Abstract

Spin qubits in semiconductors are currently one of the most promising architectures for quantum computing. However, they face challenges in realizing multi-qubit interactions over extended distances. Superconducting spin qubits provide a promising alternative by encoding a qubit in the spin degree of freedom of an Andreev level. Such an Andreev spin qubit could leverage the advantages of circuit quantum electrodynamic, enabled by an intrinsic spin-supercurrent coupling. The first realization of an Andreev spin qubit encoded the qubit in the excited states of a semiconducting weak-link, leading to frequent decay out of the computational subspace. Additionally, rapid qubit manipulation was hindered by the need for indirect Raman transitions. Here, we exploit a different qubit subspace, using the spin-split doublet ground state of an electrostatically-defined quantum dot Josephson junction with large charging energy. Additionally, we use a magnetic field to enable direct spin manipulation over a frequency range of 10 GHz. Using an all-electric microwave drive we achieve Rabi frequencies exceeding 200 MHz. We furthermore embed the Andreev spin qubit in a superconducting transmon qubit, demonstrating strong coherent qubit-qubit coupling. These results are a crucial step towards a hybrid architecture that combines the beneficial aspects of both superconducting and semiconductor qubits.

Publication: Preprint currently in the arXiv: https://arxiv.org/abs/2208.10094

Presenters

  • Marta Pita-Vidal

    TU Delft, Delft University of Technology, Qutech, Delft University of Technology

Authors

  • Marta Pita-Vidal

    TU Delft, Delft University of Technology, Qutech, Delft University of Technology

  • Arno Bargerbos

    Delft University of Technology, Qutech, Delft University of Technology

  • Rok Zitko

    Jozef Stefan Institute, University of Ljubljana

  • Lukas Johannes Splitthoff

    Delft University of Technology, Qutech, Delft University of Technology, QuTech and Kavli Institute of Nanoscience, Delft University of Technology

  • Lukas Gruenhaupt

    Delft University of Technology, Qutech, Delft University of Technology

  • Jaap J Wesdorp

    Delft University of Technology, Qutech, Delft University of Technology

  • Yu Liu

    University of Copenhagen, Niels Bohr Institute, University of Copenhagen

  • Leo P Kouwenhoven

    Delft University of Technology, Qutech, Delft University of Technology

  • Ramon Aguado

    CSIC - Madrid

  • Bernard Van Heck

    Leiden University

  • Angela Kou

    University of Illinois at Urbana-Champaign

  • Christian K Andersen

    Delft University of Technology, Qutech, Delft University of Technology, QuTech and Kavli Institute of Nanoscience, Delft University of Technology