Correlation Engine 2.0
Clear Search sequence regions


filter terms:
  • hydrogen (1)
  • nanoribbons (5)
  • oxygen (1)
  • Sizes of these terms reflect their relevance to your search.

    Open-shell graphene nanoribbons have become promising candidates for future applications, including quantum technologies. Here, we characterize magnetic states hosted by chiral graphene nanoribbons (chGNRs). The substitution of a hydrogen atom at the chGNR edge by a ketone effectively adds one pz electron to the π-electron network, producing an unpaired π-radical. A similar scenario occurs for regular ketone-functionalized chGNRs in which one ketone is missing. Two such radical states can interact via exchange coupling, and we study those interactions as a function of their relative position, which includes a remarkable dependence on the chirality, as well as on the nature of the surrounding ribbon, that is, with or without ketone functionalization. Besides, we determine the parameters whereby this type of system with oxygen heteroatoms can be adequately described within the widely used mean-field Hubbard model. Altogether, we provide insight to both theoretically model and devise GNR-based nanostructures with tunable magnetic properties.

    Citation

    Tao Wang, Sofia Sanz, Jesús Castro-Esteban, James Lawrence, Alejandro Berdonces-Layunta, Mohammed S G Mohammed, Manuel Vilas-Varela, Martina Corso, Diego Peña, Thomas Frederiksen, Dimas G de Oteyza. Magnetic Interactions Between Radical Pairs in Chiral Graphene Nanoribbons. Nano letters. 2022 Jan 12;22(1):164-171


    PMID: 34936370

    View Full Text