We investigate a well defined heterostructure constituted by magnetic Fe layers sandwiched between graphene (Gr) and Ir(111). The challenging task to avoid Fe-C solubility and Fe-Ir intermixing has been achieved with atomic controlled Fe intercalation at moderate temperature below 500 K. Upon intercalation of a single ordered Fe layer in registry with the Ir substrate, an intermixing of the Gr bands and Fe d states breaks the symmetry of the Dirac cone, with a downshift in energy of the apex by about 3 eV, and well-localized Fe intermixed states induced in the energy region just below the Fermi level. First principles electronic structure calculations show a large spin splitting of the Fe states, resulting in a majority spin channel almost fully occupied and strongly hybridized with Gr ? states. X-ray magnetic circular dichroism on the Gr/Fe/Ir heterostructure reveals an ordered spin configuration with a ferromagnetic response of Fe layer(s), with enhanced spin and orbital configurations with respect to the bcc-Fe bulk values. The magnetization switches from a perpendicular easy magnetization axis when the Fe single layer is lattice matched with the Ir(111) surface to a parallel one when the Fe thin film is almost commensurate with graphene.

Magnetic response and electronic states of well defined Graphene/Fe/Ir(111) heterostructure

Pereira Cardoso, C.;Leon Valido, D. A.;Varsano, D.;Ferretti, A.;
2021

Abstract

We investigate a well defined heterostructure constituted by magnetic Fe layers sandwiched between graphene (Gr) and Ir(111). The challenging task to avoid Fe-C solubility and Fe-Ir intermixing has been achieved with atomic controlled Fe intercalation at moderate temperature below 500 K. Upon intercalation of a single ordered Fe layer in registry with the Ir substrate, an intermixing of the Gr bands and Fe d states breaks the symmetry of the Dirac cone, with a downshift in energy of the apex by about 3 eV, and well-localized Fe intermixed states induced in the energy region just below the Fermi level. First principles electronic structure calculations show a large spin splitting of the Fe states, resulting in a majority spin channel almost fully occupied and strongly hybridized with Gr ? states. X-ray magnetic circular dichroism on the Gr/Fe/Ir heterostructure reveals an ordered spin configuration with a ferromagnetic response of Fe layer(s), with enhanced spin and orbital configurations with respect to the bcc-Fe bulk values. The magnetization switches from a perpendicular easy magnetization axis when the Fe single layer is lattice matched with the Ir(111) surface to a parallel one when the Fe thin film is almost commensurate with graphene.
2021
Istituto Nanoscienze - NANO
Istituto Nanoscienze - NANO - Sede Secondaria Modena
Inglese
5
1
1
9
9
https://journals.aps.org/prmaterials/abstract/10.1103/PhysRevMaterials.5.014405
Sì, ma tipo non specificato
---
Internazionale
10
info:eu-repo/semantics/article
262
Pereira Cardoso, C.; Avvisati, G.; Gargiani, P.; Sbroscia, M.; Jagadeesh, M. S.; Mariani, C.; Leon Valido, D. A.; Varsano, D.; Ferretti, A.; Betti, M....espandi
01 Contributo su Rivista::01.01 Articolo in rivista
open
   MAterials design at the eXascale. European Centre of Excellence in materials modelling, simulations, and design
   MaX
   European Commission
   Horizon 2020 Framework Programme
   824143

   Supercomputing Unified Platform—Emilia-Romagna
   SUPER
   Regione Emilia-Romagna
   Emilia-Romagna POR-FESR 2014-2020

   PRIN FERMAT
   FERMAT
   MUR
   PRIN2017
   2017KFY7XF
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/399086
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