4.8 Article

Topological phase transition in chiral graphene nanoribbons: from edge bands to end states

Journal

NATURE COMMUNICATIONS
Volume 12, Issue 1, Pages -

Publisher

NATURE PORTFOLIO
DOI: 10.1038/s41467-021-25688-z

Keywords

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Funding

  1. Agencia Estatal de Investigacion (AEI) [MAT2016-78293, PID2019-107338RB, FIS2017-83780-P]
  2. University of the Basque Country [IT1246-19]
  3. Basque Departamento de Educacion [PRE_2019_2_0218]
  4. European Regional Development Fund
  5. European Union (EU) H2020 program through the ERC [635919]
  6. European Union (EU) FET Open project SPRING [863098]
  7. Agencia Estatal de Investigacion (AEI) through Maria de Maeztu Units of Excellence Programme [MDM-2016-0618]
  8. Xunta de Galicia (Centro singular de investigacion de Galicia) [ED431G/09]

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By narrowing semi-metallic chiral graphene nanoribbons to nanometer widths, a transition from metallic to topological insulators is observed. The combination of scanning tunneling microscopy measurements and theory simulations allows tracking the evolution of topological properties and band gaps of chiral graphene nanoribbons depending on their width, length, and chirality.
Precise control over the size and shape of graphene nanostructures allows engineering spin-polarized edge and topological states, representing a novel source of non-conventional pi-magnetism with promising applications in quantum spintronics. A prerequisite for their emergence is the existence of robust gapped phases, which are difficult to find in extended graphene systems. Here we show that semi-metallic chiral GNRs (chGNRs) narrowed down to nanometer widths undergo a topological phase transition. We fabricated atomically precise chGNRs of different chirality and size by on surface synthesis using predesigned molecular precursors. Combining scanning tunneling microscopy (STM) measurements and theory simulations, we follow the evolution of topological properties and bulk band gap depending on the width, length, and chirality of chGNRs. Our findings represent a new platform for producing topologically protected spin states and demonstrate the potential of connecting chiral edge and defect structure with band engineering. Graphene nanoribbons are potential systems for engineering topological phases of matter, but the pre-required gapped phases are difficult to find. Here, the authors show that chiral graphene nanoribbons undergo a transition from metallic to topological insulators, and then to trivial band insulators as they are narrowed down to nanometer widths.

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