Towards fully two-dimensional spintronic devices
arXiv:2202.09972 · doi:10.1088/2053-1583/ac7881
Abstract
Within the field of spintronics major efforts are directed towards developing applications for spin-based transport devices made fully out of two-dimensional (2D) materials. In this work we present an experimental realization of a spin-valve device where the generation of the spin signal is exclusively attributed to the spin-dependent conductivity of the magnetic graphene resulting from the proximity of an interlayer antiferromagnet, CrSBr. We clearly demonstrate that the usage of the conventional 3D magnetic contacts, that are commonly air-sensitive and incompatible with practical technologies, can be fully avoided when graphene/CrSBr heterostructures are employed. Moreover, apart from providing exceptionally long spin relaxation length, the usage of graphene for both generation and transport of the spin allows to automatically avoid the conductivity mismatch between the source and the channel circuits that has to be considered when using conventional low-resistive contacts. Our results address a necessary step in the engineering of spintronic circuitry out of layered materials and precede further developments in the area of complex spin-logic devices. Moreover, we introduce a fabrication procedure where we designed and implemented a recipe for the preparation of electrodes via a damage-free technique that offers an immediate advantage in the fields of air-sensitive and delicate organic materials.
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Cited by in corpus (6)
- Probing the spin dimensionality in single-layer CrSBr van der Waals heterostructures by magneto-transport measurements
- Emergent correlated phases in rhombohedral trilayer graphene induced by proximity spin-orbit and exchange coupling
- Nitrogen-vacancy magnetometry of CrSBr by diamond membrane transfer
- Swapping exchange and spin-orbit induced correlated phases in proximitized Bernal bilayer graphene
- Magnon dispersion and spin transport in CrCl bilayers under different strain-induced magnetic states
- Thickness-dependent magnon spin transport in antiferromagnetic insulators: Crossover from quasi-three-dimensional to quasi-two-dimensional regimes