Topological phase transition in chiral graphene nanoribbons: from edge bands to end states
arXiv:2103.15937 · doi:10.1038/s41467-021-25688-z
Abstract
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 -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: only armchair graphene nanoribbons (GNRs) show a band gap that, however, closes for any other GNR orientation. Here we show that semi-metallic chiral GNRs (chGNRs) narrowed down to nanometer widths undergoes a topological phase transition, becoming first topological insulators, and transforming then into trivial band insulators for the narrowest chGNRs. We fabricated atomically precise chGNRs of different chirality and size by on surface synthesis using predesigned molecular precursors. Combining scanning tunnelling 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. The first emerging gapped phases are topological, protected by a chiral interaction pattern between edges. For narrower ribbons, the symmetry of the interaction pattern changes, and the topological gap closes and re-opens again as a trivial band insulator. Our findings represent a new platform for producing topologically protected spin states and demonstrates the potential of connecting chiral edge and defect structure with band engineering.
12 pages, 5 figures
References in corpus (6)
- Quantum Spin Hall Insulator State in HgTe Quantum Wells
- Width-Dependent Band Gap in Armchair Graphene Nanoribbons Reveals Fermi Level Pinning on Au(111)
- Substrate-Independent Growth of Atomically Precise Chiral Graphene Nanoribbons
- Probing the magnetism of topological end-states in 5-armchair graphene nanoribbons
- Correlated Topological States in Graphene Nanoribbon Heterostructures
- Angular momentum anisotropy of Dirac carriers: A new twist in graphene
Cited by in corpus (24)
- Circumventing the Stability Problems of Graphene Nanoribbon Zigzag Edges
- Detecting the spin-polarization of edge states in graphene nanoribbons
- Addressing electron spins embedded in metallic graphene nanoribbons
- Specifics of the Elemental Excitations in "True One-Dimensional" MoI van der Waals Nanowires
- Cove-edged Chiral Graphene Nanoribbons with Chirality-Dependent Bandgap and Carrier Mobility
- Fabrication of Spin-1/2 Heisenberg Antiferromagnetic Chains via Combined On-surface Synthesis and Reduction for Spinon Detection
- Hydrogen Atoms on Zigzag Graphene Nanoribbons: Chemistry and Magnetism Meet at the Edge
- Order from a mess: the growth of 5-armchair graphene nanoribbons
- Emerging topological bound states in Haldane model zigzag nanoribbons
- Doublon production in correlated materials by multiple ion impacts
- Band structure and energy level alignment of chiral graphene nanoribbons on silver surfaces
- Ferromagnetism in armchair graphene nanoribbon heterostructures
- Floquet topological insulators with hybrid edges
- Quantum phase transition in magnetic nanographenes on a lead superconductor
- Systematic Modulation of Charge and Spin in Graphene Nanoribbons on MgO
- Sub-symmetry Protected Topology in Topological Insulators and Superconductors
- Spin and Charge Control of Topological End States in Chiral Graphene Nanoribbons on a 2D Ferromagnet
- Tunable Band Inversion in Trilayer Graphene
- Hyperfine interactions in open-shell planar -carbon nanostructures
- Thermodynamic Favorability of the 1T Phase over the 1H Phase in Group III Metal Monochalcogenide Zigzag Nanoribbons
- Direct Observation of the Zigzag Edge States of a Supramolecular Diatomic Kagome Lattice
- Magnetically tuned topological phase in graphene nanoribbon heterojunctions
- Non-Hermitian Effects in the Su-Schrieffer-Heeger model: Exploring Substrate Coupling and Decoupling Dynamics
- Particle-hole symmetry broken solutions in graphene nanoribbons: a multi-orbital, mean-field perspective