Electronic properties of transition metal atoms on Cu2N/Cu(100)

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Título: Electronic properties of transition metal atoms on Cu2N/Cu(100)
Autor/es: Ferrón, Alejandro | Lado, Jose L. | Fernández-Rossier, Joaquín
Grupo/s de investigación o GITE: Grupo de Nanofísica
Centro, Departamento o Servicio: Universidad de Alicante. Departamento de Física Aplicada | Universidad de Alicante. Instituto Universitario de Materiales
Palabras clave: Spin excitations | Transition metal atoms | Cu2N/Cu(100)
Área/s de conocimiento: Física de la Materia Condensada
Fecha de publicación: 9-nov-2015
Editor: American Physical Society
Cita bibliográfica: Physical Review B. 2015, 92: 174407. doi:10.1103/PhysRevB.92.174407
Resumen: We study the nature of spin excitations of individual transition metal atoms (Ti, V, Cr, Mn, Fe, Co, and Ni) deposited on a Cu2N/Cu(100) surface using both spin-polarized density functional theory (DFT) and exact diagonalization of an Anderson model derived from DFT. We use DFT to compare the structural, electronic, and magnetic properties of different transition metal adatoms on the surface. We find that the average occupation of the transition metal d shell, main contributor to the magnetic moment, is not quantized, in contrast with the quantized spin in the model Hamiltonians that successfully describe spin excitations in this system. In order to reconcile these two pictures, we build a zero bandwidth multi-orbital Anderson Hamiltonian for the d shell of the transition metal hybridized with the p orbitals of the adjacent nitrogen atoms, by means of maximally localized Wannier function representation of the DFT Hamiltonian. The exact solutions of this model have quantized total spin, without quantized charge at the d shell. We propose that the quantized spin of the models actually belongs to many-body states with two different charge configurations in the d shell, hybridized with the p orbital of the adjacent nitrogen atoms. This scenario implies that the measured spin excitations are not fully localized at the transition metal.
Patrocinador/es: J.F.R. acknowledges financial supported by MECSpain (FIS2013-47328-C2-2-P) and Generalitat Valenciana (ACOMP/2010/070), Prometeo. This work has been financially supported in part by FEDER funds. J.L.L. and J.F.R. acknowledge financial support by Marie-Curie-ITN 607904-SPINOGRAPH. A.F. acknowledges funding from the European Union’s Seventh Framework Programme for research, technological development and demonstration, under the PEOPLE programme, Marie Curie COFUND Actions, Grant Agreement No. 600375, and CONICET.
URI: http://hdl.handle.net/10045/54253
ISSN: 0163-1829 (Print) | 1095-3795 (Online)
DOI: 10.1103/PhysRevB.92.174407
Idioma: eng
Tipo: info:eu-repo/semantics/article
Derechos: © 2015 American Physical Society
Revisión científica: si
Versión del editor: http://dx.doi.org/10.1103/PhysRevB.92.174407
Aparece en las colecciones:INV - Grupo de Nanofísica - Artículos de Revistas
Investigaciones financiadas por la UE

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