Uncovering the Triplet Ground State of Triangular Graphene Nanoflakes Engineered with Atomic Precision on a Metal Surface
arXiv:1912.08298 · doi:10.1103/PhysRevLett.124.177201
Abstract
Graphene can develop large magnetic moments in custom crafted open-shell nanostructures such as triangulene, a triangular piece of graphene with zigzag edges. Current methods of engineering graphene nano-systems on surfaces succeeded in producing atomically precise open-shell structures, but demonstration of their net spin remains elusive to date. Here, we fabricate triangulene-like graphene systems and demonstrate that they possess a spin ground state. Scanning tunnelling spectroscopy identifies the fingerprint of an underscreened Kondo state on \rev{these} flakes at low temperatures, signaling the dominant ferromagnetic interactions between two spins. Combined with simulations based on the meanfield Hubbard model, we show that this -paramagnetism is robust, and can be manipulated to a state by adding additional H-atoms to the radical sites. \rev{Our results demonstrate that -paramagnetism of high-spin graphene flakes can survive on surfaces, opening the door to study the quantum behaviour of interacting -spins in graphene systems.
4 figures plus supporting information, APS copyright