Probing magnetism in atomically thin semiconducting PtSe<sub>2</sub>.

Avsar, Ahmet; Cheon, Cheol-Yeon; Pizzochero, Michele; Tripathi, Mukesh; Ciarrocchi, Alberto; Yazyev, Oleg V; Kis, Andras · Nat Commun · 2020

basic_science · Level V

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Abstract

Atomic-scale disorder in two-dimensional transition metal dichalcogenides is often accompanied by local magnetic moments, which can conceivably induce long-range magnetic ordering into intrinsically non-magnetic materials. Here, we demonstrate the signature of long-range magnetic orderings in defective mono- and bi-layer semiconducting PtSe<sub>2</sub> by performing magnetoresistance measurements under both lateral and vertical measurement configurations. As the material is thinned down from bi- to mono-layer thickness, we observe a ferromagnetic-to-antiferromagnetic crossover, a behavior which is opposite to the one observed in the prototypical 2D magnet CrI<sub>3</sub>. Our first-principles calculations, supported by aberration-corrected transmission electron microscopy imaging of point defects, associate this transition to the interplay between the defect-induced magnetism and the interlayer interactions in PtSe<sub>2</sub>. Furthermore, we show that graphene can be effectively used to probe the magnetization of adjacent semiconducting PtSe<sub>2</sub>. Our findings in an ultimately scaled monolayer system lay the foundation for atom-by-atom engineering of magnetism in otherwise non-magnetic 2D materials.