Systematic modulation of charge and spin in graphene nanoribbons on MgO
Abstract
Abstract In order to take full advantage of graphene nanostructures in quantum technologies, their charge and spin state must be precisely controlled. Graphene quantum dots require external gating potentials to tune their ground state. Here, we show systematic manipulation of the electron occupation in graphene nanoribbons lying on MgO layers grown on Ag(001). Owing to the efficient electronic decoupling character of MgO, and the electropositive nature of the substrate, the ribbons host an integer number of electrons that depend on their length and shape. This results in the alternation between a non-magnetic closed-shell state and an open-shell paramagnetic system for even and odd electron occupations respectively. For the odd case, we find a narrow Coulomb correlation gap, which is the smoking gun of its spin-½ state. Comparisons of scanning tunnelling microscopy data with mean-field Hubbard simulations confirm the discretization of the ribbons’ electronic states and charge excess of up to 19 electrons per ribbon.
Article Details
Authors (10)
Amelia Domínguez-Celorrio
Leonard Edens
Sofía Sanz
Manuel Vilas-Varela
Center for Research in Biological Chemistry and Molecular Materials (CiQUS) and Department of Organic Chemistry
Jose Martinez-Castro
Diego Peña
Center for Research in Biological Chemistry and Molecular Materials, and Department of Organic Chemistry
Véronique Langlais
Thomas Frederiksen
Donostia International Physics Center (DIPC)
José I. Pascual
David Serrate