Export citation

Export citation

Choose format for download:

Download Citation

    Colloquium: Spin-orbit effects in superconducting hybrid structures

    Morten Amundsen*, Jacob Linder, Jason W. A. Robinson, Igor Žutić§, and Niladri Banerjee

    Morten Amundsen*

    • Nordita, KTH Royal Institute of Technology and Stockholm University, Hannes Alfvéns väg 12, SE-106 91 Stockholm, Sweden and Center for Quantum Spintronics, Department of Physics, Norwegian University of Science and Technology, NO-7491 Trondheim, Norway

    Jacob Linder

    • Center for Quantum Spintronics, Department of Physics, Norwegian University of Science and Technology, NO-7491 Trondheim, Norway

    Jason W. A. Robinson

    • Department of Materials Science and Metallurgy, University of Cambridge, 27 Charles Babbage Road, Cambridge CB3 0FS, United Kingdom

    Igor Žutić§

    • Department of Physics, University at Buffalo, State University of New York, Buffalo, New York 14260, USA

    Niladri Banerjee

    • Department of Physics, Blackett Laboratory, Imperial College London, London SW7 2AZ, United Kingdom

    • *morten.amundsen@ntnu.no
    • jacob.linder@ntnu.no
    • jjr33@cam.ac.uk
    • §zigor@buffalo.edu
    • n.banerjee@imperial.ac.uk

    Rev. Mod. Phys. 96, 021003 – Published 28 May, 2024

    DOI: https://doi.org/10.1103/RevModPhys.96.021003

    Abstract

    Spin-orbit coupling (SOC) relates to the interaction between an electron’s motion and its spin and is ubiquitous in solid-state systems. Although the effect of SOC in normal-state phenomena has been extensively studied, its role in superconducting hybrid structures and devices elicits many unexplored questions. In conjunction with broken symmetries and material inhomogeneities within superconducting hybrid structures, SOC may have contributions beyond its effects in homogeneous materials. Notably, even with well-established magnetic or nonmagnetic materials and conventional s-wave spin-singlet superconductors, SOC leads to emergent phenomena including equal-spin-triplet pairing and topological superconductivity (hosting Majorana states), a modified current-phase relationship in Josephson junctions, and nonreciprocal transport, including superconducting diode effects. SOC is also responsible for transforming quasiparticles in superconducting structures, which enhances the spin Hall effect and changes the spin dynamics. Taken together, SOC in superconducting hybrid structures and the potential for electric tuning of the SOC strength create interesting possibilities to advance superconducting spintronic devices for energy-efficient computing and enable topological fault-tolerant quantum computing. By providing a description of experimental techniques and theoretical methods to study SOC, this Colloquium describes the current understanding of resulting phenomena in superconducting structures and offers a framework to select and design a growing class of materials systems where SOC plays an important role.

    Physics Subject Headings (PhySH)

    Authorization Required

    We need you to provide your credentials before accessing this content.

    References (Subscription Required)

    Outline

    Information

    Sign In to Your Journals Account

    Filter

    Filter

    Article Lookup

    Enter a citation