Tuning of Magnetic Activity in Spin-Filter Josephson Junctions Towards Spin-Triplet Transport
arXiv:1902.00406 · doi:10.1103/PhysRevLett.122.047002
Abstract
The study of superconductor-ferromagnet interfaces has generated great interest in the last decades, leading to the observation of spin-aligned triplet supercurrents and 0-pi transitions in Josephson junctions where two superconductors are separated by an itinerant ferromagnet. Recently, spin-filter Josephson junctions with ferromagnetic barriers have shown unique transport properties, when compared to standard metallic ferromagnetic junctions, due to the intrinsically nondissipative nature of the tunneling process. Here we present the first extensive characterization of spin polarized Josephson junctions down to 0.3 K, and the first evidence of an incomplete 0-pi transition in highly spin polarized tunnel ferromagnetic junctions. Experimental data are consistent with a progressive enhancement of the magnetic activity with the increase of the barrier thickness, as neatly captured by the simplest theoretical approach including a nonuniform exchange field. For very long junctions, unconventional magnetic activity of the barrier points to the presence of spin-triplet correlations.
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- Ferromagnetic Materials for Josephson π Junctions
- Electrodynamics of highly spin-polarized tunnel Josephson junctions
- Inverse magnetic hysteresis of the Josephson supercurrent: study of the magnetic properties of thin niobium/permalloy (Fe_{20}Ni_{80}) interfaces
- Charge and Spin Supercurrents in Magnetic Josephson Junctions with Spin Filters and Domain Walls
- Andreev spin-noise detector