Enhancement of supercurrent through ferromagnetic materials by interface engineering
arXiv:2201.05444 · doi:10.1103/PhysRevB.106.014519
Abstract
Josephson junctions containing ferromagnetic materials exhibit interesting physics and show promise as circuit elements for superconducting logic and memory. For memory applications, the properties of the junction should be controllable by changing the magnetic configuration inside the junction. To achieve good magnetic switching properties, one should choose a soft magnetic material such as NiFe (permalloy); however, NiFe exhibits poor supercurrent transmission in Josephson junctions. In this work we put thin layers of Ni on either side of the NiFe and characterize the magnetic behavior and supercurrent transmission properties of the Ni/NiFe/Ni trilayers as a function of Ni and NiFe thicknesses. Using a Ni thickness of 0.4 nm, we find that the magnetic switching behavior of the trilayers is not severely degraded relative to plain NiFe, while the maximum supercurrent in the -state of the trilayer Josephson junctions is increased by a factor of four relative to that of NiFe junctions. We speculate that the supercurrent enhancement is due to the different spin-dependent transport properties of the Cu/Ni and Cu/NiFe interfaces.
10 pages, 7 figures
References in corpus (9)
- Critical Current Oscillations in Strong Ferromagnetic Pi-Junctions
- Beyond Moore's technologies: operation principles of a superconductor alternative
- Ferromagnetic Josephson switching device with high characteristic voltage
- Experimental demonstration of a Josephson magnetic memory cell with a programmable π-junction
- Phase Controllable Josephson Junctions for Cryogenic Memory
- Properties of ferromagnetic Josephson junctions for memory applications
- Planarized Fabrication Process With Two Layers of SIS Josephson Junctions and Integration of SIS and SFS π-Junctions
- Supercurrent decay in ballistic magnetic Josephson junctions
- Distortions to the penetration depth and coherence length of superconductor/normal-metal superlattices