Angle-Dependent Magnetoresistance Induced by Interface-Generated Spin Current in RuO/Permalloy Heterostructures
arXiv:2504.00230 · doi:10.1103/4m5d-ylyr
Abstract
Altermagnets, a recently discovered class of magnetic materials exhibiting ferromagnetic-like spin-split bands and antiferromagnetic-like compensated magnetic order, have attracted significant interest for next-generation spintronic applications. Ruthenium dioxide (RuO2) has emerged as a promising altermagnetic candidate due to its compensated antiparallel magnetic order and strong spin-split electronic bands. However, recent experimental and theoretical reports also suggest that RuO2 may be non-magnetic in its ground state, underscoring the need for deeper investigations into its magnetic character. Specifically, the (100)-oriented RuO2 films are expected to generate spin currents with transverse spin polarization parallel to the Néel vector. Here, we investigate magnetotransport in epitaxial RuO2/Permalloy (Py) heterostructures to examine spin Hall magnetoresistance and interfacial effects generated in such systems. Our measurements reveal a pronounced negative angular-dependent magnetoresistance for variation of magnetic field direction perpendicular to the charge current direction. Detailed temperature-, magnetic field-, and crystallographic orientation-dependent measurements indicate that interface-generated spin current (IGSC) at the RuO2/Py interface predominantly governs the observed magnetoresistance. This shows that strong interface effects dominate over possible altermagnetic contributions from RuO2. Our results show that the role of interface-generated spin currents is crucial and should not be overlooked in studies of altermagnetic systems. A critical step in this direction is disentangling interfacial from altermagnetic contributions. The insight into interfacial contributions from altermagnetic influences is essential for the advancement of RuO2 based spintronic memory and sensing applications.
References in corpus (29)
- Spin Hall effect
- Spin Hall Magnetoresistance Induced by a Non-Equilibrium Proximity Effect
- Theory of spin Hall magnetoresistance
- Observation of the Anomalous Hall Effect in a Collinear Antiferromagnet
- Efficient Electrical Spin-Splitter Based on Non-Relativistic Collinear Antiferromagnetism
- Quantitative study of the spin Hall magnetoresistance in ferromagnetic insulator/normal metal hybrids
- Observation of spin splitting torque in a collinear antiferromagnet RuO2
- Tilted spin current generated by the collinear antiferromagnet RuO2
- Observation of spin-splitter torque in collinear antiferromagnetic RuO
- Spin Transport at Interfaces with Spin-Orbit Coupling: Phenomenology
- Itinerant Antiferromagnetism in RuO
- Spin-Hall Magnetoresistance in Platinum on Yttrium Iron Garnet: Dependence on platinum thickness and in-plane/out-of-plane magnetization
- Interface-generated spin currents
- Giant room temperature interface spin Hall and inverse spin Hall effects
- Spin Transport at Interfaces with Spin-Orbit Coupling: Formalism
- Anomalous Antiferromagnetism in Metallic RuO Determined by Resonant X-ray Scattering
- Spin Hall magnetoresistance in antiferromagnet/heavy-metal heterostructures
- Observation of the Orbital Rashba-Edelstein Magnetoresistance
- Negative spin Hall magnetoresistance of Pt on the bulk easy-plane antiferromagnet NiO
- Nonmagnetic Ground State in RuO Revealed by Muon Spin Rotation
- Rashba-Edelstein Magnetoresistance in Metallic Heterostructure
- Current-induced torques and interfacial spin-orbit coupling
- Full angular dependence of the spin Hall and ordinary magnetoresistance in epitaxial antiferromagnetic NiO(001)/Pt thin films
- Saturation of the anomalous Hall effect at high magnetic fields in altermagnetic RuO2
- Fragility of the magnetic order in the prototypical altermagnet RuO
- Anomalous Hall magnetoresistance in a ferromagnet
- Theory of spin loss at metallic interfaces
- Spin Hall magnetoresistance in antiferromagnet/normal metal bilayers
- Generalized magnetoelectronic circuit theory and spin relaxation at interfaces in magnetic multilayers