Magnetic exchange interaction in spin-valve with chiral spin-triplet superconductor
arXiv:2408.09812 · doi:10.1103/PhysRevB.109.134516
Abstract
The coupling between two ferromagnets separated by a superconductor has been mostly investigated for the case of Cooper pairs with spin-singlet symmetry. Here, we consider a spin-triplet superconductor with chiral pairing. By full self-consistent analysis of the spatial dependent superconducting order parameter, we determine the magnetic ground state of the superconducting spin valve. The study is performed by investigating the role of the orientation and strength of the magnetization in the ferromagnets including spin-valve asymmetries in the magnetic configurations. Due to the nonvanishing angular momentum of the spin-triplet Cooper pairs we demonstrate that the induced magnetic coupling has an anisotropic character and a structure that can favor collinear or noncollinear magnetic orientations, thus mimicking a magnetic interaction of the Heisenberg or Dzyaloshinskii-Moriya type, respectively. We investigate the role of the physical parameters controlling the character of the magnetic exchange: the amplitude of the magnetization in the ferromagnets and the length of the superconducting spacer in the spin valve. Our study demonstrates that spin-triplet superconductors can be employed to devise anisotropic magnetic exchange and to allow for transitions in the spin-valve state from a collinear to noncollinear magnetic configuration.
13 pages, 8 figures
References in corpus (25)
- Superconducting triplet spin valve
- Triplet proximity effect in FSF trilayers
- Fractional ac Josephson effect in unconventional superconductors
- Stray-fields-based magnetoresistance mechanism in Ni80Fe20-Nb-Ni80Fe20 trilayers
- Colossal orbital-Edelstein effect in non-centrosymmetric superconductors
- Unveiling unconventional magnetism at the surface of SrRuO
- Nodal superconducting exchange coupling
- Magnetoelectric Andreev effect due to proximity-induced non-unitary triplet superconductivity in helical metals
- Spontaneous spin accumulation in singlet-triplet Josephson junctions
- Materials challenges for SrRuO3: from conventional to quantum electronics
- Magnetic-Field-Induced Topological Reorganization of a P-wave Superconductor
- Non-equilibrium spin transport in Zeeman-split superconductors
- Zeeman field induced topological phase transitions in triplet superconductors
- Magnetoelectric effects in superconducting nanowires with Rashba spin-orbit coupling
- Signatures of a surface spin-orbital chiral metal
- Anomalous Josephson Coupling and High-Harmonics in Non-Centrosymmetric Superconductors with -wave Spin-Triplet Pairing
- Critical Temperature Oscillations and Reentrant Superconductivity due to the FFLO like State in F/S/F Trilayers
- High orbital-moment Cooper pairs by crystalline symmetry breaking
- Spontaneous magnetization in unitary superconductors with time reversal symmetry breaking
- Zero magnetic-field orbital vortices in s-wave spin-singlet superconductors
- Inverse Proximity Effects at Spin-Triplet Superconductor-Ferromagnet Interface
- Berezinskii-Kosterlitz-Thouless transition transport in spin-triplet superconductor
- Surface Cooper pair spin waves in triplet superconductors
- Interface currents and magnetization in singlet-triplet superconducting heterostructures: Role of chiral and helical domains
- Spin and charge transport in ferromagnet-superconductor-ferromagnet heterostructures: Stoner versus spin mass mismatch mechanism