Publications by authors named "G A de Veber"

Article Synopsis
  • * Synthesis of metallic GNRs has been challenging due to strict structural rules and limited control over the building blocks used in their construction.
  • * A new method is reported that creates regular GNRs with strong metallic properties by incorporating a special superlattice structure, which has been confirmed through theoretical models and experimental techniques.
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Bottom-up graphene nanoribbons (GNRs) have recently been shown to host nontrivial topological phases. Here, we report the fabrication and characterization of deterministic GNR quantum dots whose orbital character is defined by zero-mode states arising from nontrivial topological interfaces. Topological control was achieved through the synthesis and on-surface assembly of three distinct molecular precursors designed to exhibit structurally derived topological electronic states.

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Article Synopsis
  • The study introduces a hybrid bottom-up synthesis technique called Matrix-Assisted Direct (MAD) transfer for creating graphene nanoribbons (GNRs) that combines the advantages of solution-based and on-surface approaches.
  • This method allows for precise control over critical structural properties, translating them effectively into the resulting GNRs.
  • The research showcases the synthesis of unique structures such as chevron-type GNRs and nitrogen-doped armchair GNRs, which could not be achieved using conventional synthesis methods alone.
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The design and fabrication of robust metallic states in graphene nanoribbons (GNRs) are challenging because lateral quantum confinement and many-electron interactions induce electronic band gaps when graphene is patterned at nanometer length scales. Recent developments in bottom-up synthesis have enabled the design and characterization of atomically precise GNRs, but strategies for realizing GNR metallicity have been elusive. Here we demonstrate a general technique for inducing metallicity in GNRs by inserting a symmetric superlattice of zero-energy modes into otherwise semiconducting GNRs.

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The incorporation of nanoscale pores into a sheet of graphene allows it to switch from an impermeable semimetal to a semiconducting nanosieve. Nanoporous graphenes are desirable for applications ranging from high-performance semiconductor device channels to atomically thin molecular sieve membranes, and their performance is highly dependent on the periodicity and reproducibility of pores at the atomic level. Achieving precise nanopore topologies in graphene using top-down lithographic approaches has proven to be challenging due to poor structural control at the atomic level.

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