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Electronic structure of the Co ( 0001 ) / Mo S 2 interface and its possible use for electrical spin injection in a single Mo S 2 layer

Authors :
Garandel, T.
Arras, Rémi
Marie, Xavier
Renucci, Pierre
Calmels, Lionel
Centre d'élaboration de matériaux et d'études structurales ( CEMES )
Institut National des Sciences Appliquées - Toulouse ( INSA Toulouse )
Institut National des Sciences Appliquées ( INSA ) -Institut National des Sciences Appliquées ( INSA ) -Université Toulouse III - Paul Sabatier ( UPS )
Université Fédérale Toulouse Midi-Pyrénées-Université Fédérale Toulouse Midi-Pyrénées-Centre National de la Recherche Scientifique ( CNRS )
Laboratoire de physique et chimie des nano-objets ( LPCNO )
Laboratoire de physique et chimie des nano-objets (LPCNO)
Institut National des Sciences Appliquées - Toulouse (INSA Toulouse)
Institut National des Sciences Appliquées (INSA)-Institut National des Sciences Appliquées (INSA)-Université Toulouse III - Paul Sabatier (UPS)
Université Fédérale Toulouse Midi-Pyrénées-Université Fédérale Toulouse Midi-Pyrénées-Centre National de la Recherche Scientifique (CNRS)
Matériaux et dispositifs pour l'Electronique et le Magnétisme (CEMES-MEM)
Centre d'élaboration de matériaux et d'études structurales (CEMES)
Institut National des Sciences Appliquées (INSA)-Institut National des Sciences Appliquées (INSA)-Centre National de la Recherche Scientifique (CNRS)-Université Toulouse III - Paul Sabatier (UPS)
Université Fédérale Toulouse Midi-Pyrénées-Université Fédérale Toulouse Midi-Pyrénées-Institut National des Sciences Appliquées - Toulouse (INSA Toulouse)
Université Fédérale Toulouse Midi-Pyrénées-Université Fédérale Toulouse Midi-Pyrénées
Source :
Physical Review B : Condensed matter and materials physics, Physical Review B : Condensed matter and materials physics, American Physical Society, 2017, 95 (7), Physical Review B : Condensed matter and materials physics, American Physical Society, 2017, 95 (7), pp.075402
Publication Year :
2017
Publisher :
HAL CCSD, 2017.

Abstract

International audience; The ability to perform efficient electrical spin injection from ferromagnetic metals into two-dimensional semiconductor crystals based on transition metal dichalcogenide monolayers is a prerequisite for spintronic and valleytronic devices using these materials. Here, the hexagonal close-packed (hcp) Co(0001)/MoS2 interface electronic structure is investigated by first-principles calculations based on the density functional theory. In the lowest energy configuration of the hybrid system after optimization of the atomic coordinates, we show that interface sulfur atoms are covalently bound to one, two, or three cobalt atoms. A decrease of the Co atom spin magnetic moment is observed at the interface, together with a small magnetization of S atoms. Mo atoms also hold small magnetic moments, which can take positive as well as negative values. The charge transfers due to covalent bonding between S and Co atoms at the interface have been calculated for majority and minority spin electrons, and the connections between these interface charge transfers and the induced magnetic properties of the MoS2 layer are discussed. Band structure and density of states of the hybrid system are calculated for minority and majority spin electrons, taking into account spin-orbit coupling. We demonstrate that MoS2 bound to the Co contact becomes metallic due to hybridization between Co d and S p orbitals. For this metallic phase of MoS2, a spin polarization at the Fermi level of 16% in absolute value is calculated, which could allow spin injection into the semiconducting MoS2 monolayer channel. Finally, the symmetry of the majority and minority spin electron wave functions at the Fermi level in the Co-bound metallic phase of MoS2 and the orientation of the border between the metallic and semiconducting phases of MoS2 are investigated, and their impact on spin injection into the MoS2 channel is discussed.

Details

Language :
English
ISSN :
01631829 and 10953795
Database :
OpenAIRE
Journal :
Physical Review B : Condensed matter and materials physics, Physical Review B : Condensed matter and materials physics, American Physical Society, 2017, 95 (7), Physical Review B : Condensed matter and materials physics, American Physical Society, 2017, 95 (7), pp.075402
Accession number :
edsair.dedup.wf.001..12bdc94f71d54ebb9c2c3ef17bab56eb