Tunable planar Josephson junctions driven by time-dependent spin-orbit coupling
arXiv:2208.07512 · doi:10.1103/PhysRevApplied.18.L031001
Abstract
Integrating conventional superconductors with common III-V semiconductors provides a versatile platform to implement tunable Josephson junctions (JJs) and their applications. We propose that with gate-controlled time-dependent spin-orbit coupling, it is possible to strongly modify the current-phase relations and Josephson energy and provide a mechanism to drive the JJ dynamics, even in the absence of any bias current. We show that the transition between stable phases is realized with a simple linear change in the strength of the spin-orbit coupling, while the transition rate can exceed the gate-induced electric field GHz changes by an order of magnitude. The resulting interplay between the constant effective magnetic field and changing spin-orbit coupling has direct implications for superconducting spintronics, controlling Majorana bound states, and emerging qubits. We argue that topological superconductivity, sought for fault-tolerant quantum computing, offers simpler applications in superconducting electronics and spintronics.
7 pages, 5 figures, published in Phys. Rev. Applied as a Letter
References in corpus (11)
- Superconducting proximity effect and Majorana fermions at the surface of a topological insulator
- Direct coupling between magnetism and superconducting current in Josephson Phi junction
- Anomalous Josephson effect induced by spin-orbit interaction and Zeeman effect in semiconductor nanowires
- Anomalous Josephson Current in Junctions with Spin-Polarizing Quantum Point Contacts
- Magnetic moment manipulation by a Josephson current
- Experimental evidence of a ϕ Josephson junction
- Reversible control of spin-polarised supercurrents in ferromagnetic Josephson junctions
- Macroscopic quantum dynamics of pi-junctions with ferromagnetic insulators
- Tuning Topological Superconductivity in Phase-Controlled Josephson Junctions with Rashba and Dresselhaus Spin-Orbit Coupling
- Superconductivity-induced change in magnetic anisotropy in epitaxial ferromagnet-superconductor hybrids with spin-orbit interaction
- Magnetoanisotropic Josephson effect due to interfacial spin-orbit fields in superconductor/ferromagnet/superconductor junctions