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      Spin injection by spin–charge coupling in proximity induced magnetic graphene

      , , , ,
      2D Materials
      IOP Publishing

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          Abstract

          Within the field of spintronics major efforts are directed towards developing applications for spin-based transport devices made fully out of two-dimensional 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, chromium sulfide bromide (CrSBr). We clearly demonstrate that the usage of the conventional air-sensitive 3D magnetic contacts 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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          Giant Magnetoresistance of (001)Fe/(001)Cr Magnetic Superlattices

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            Van der Waals heterostructures

            Research on graphene and other two-dimensional atomic crystals is intense and is likely to remain one of the leading topics in condensed matter physics and materials science for many years. Looking beyond this field, isolated atomic planes can also be reassembled into designer heterostructures made layer by layer in a precisely chosen sequence. The first, already remarkably complex, such heterostructures (often referred to as 'van der Waals') have recently been fabricated and investigated, revealing unusual properties and new phenomena. Here we review this emerging research area and identify possible future directions. With steady improvement in fabrication techniques and using graphene's springboard, van der Waals heterostructures should develop into a large field of their own.
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              Enhanced magnetoresistance in layered magnetic structures with antiferromagnetic interlayer exchange

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                Author and article information

                Contributors
                (View ORCID Profile)
                Journal
                2D Materials
                2D Mater.
                IOP Publishing
                2053-1583
                June 24 2022
                October 01 2022
                June 24 2022
                October 01 2022
                : 9
                : 4
                : 045003
                Article
                10.1088/2053-1583/ac7881
                6929c902-b7b6-491b-b0e2-c5e18ca93acd
                © 2022

                http://creativecommons.org/licenses/by/4.0

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