Porphyrin-fused graphene nanoribbons

Open Access
Authors
  • Q. Chen
  • A. Lodi
  • H. Zhang
  • A. Gee
  • H.I. Wang
  • F. Kong
  • M. Clarke
  • M. Edmondson
  • J. Hart
  • J.N. O’Shea
  • W. Stawski
  • J. Baugh
  • A. Narita
  • A. Saywell
  • M. Bonn
  • K. Müllen
  • L. Bogani
  • H.L. Anderson
Publication date 07-2024
Journal Nature Chemistry
Volume | Issue number 16 | 7
Pages (from-to) 1133-1140
Number of pages 8
Organisations
  • Faculty of Science (FNWI) - Institute of Physics (IoP) - Van der Waals-Zeeman Institute (WZI)
Abstract
Abstract Graphene nanoribbons (GNRs), nanometre-wide strips of graphene, are promising materials for fabricating electronic devices. Many GNRs have been reported, yet no scalable strategies are known for synthesizing GNRs with metal atoms and heteroaromatic units at precisely defined positions in the conjugated backbone, which would be valuable for tuning their optical, electronic and magnetic properties. Here we report the solution-phase synthesis of a porphyrin-fused graphene nanoribbon (PGNR). This PGNR has metalloporphyrins fused into a twisted fjord-edged GNR backbone; it consists of long chains (>100 nm), with a narrow optical bandgap (~1.0 eV) and high local charge mobility (>400 cm2  V–1  s–1 by terahertz spectroscopy). We use this PGNR to fabricate ambipolar field-effect transistors with appealing switching behaviour, and single-electron transistors displaying multiple Coulomb diamonds. These results open an avenue to π-extended nanostructures with engineerable electrical and magnetic properties by transposing the coordination chemistry of porphyrins into graphene nanoribbons.
Document type Article
Note With supplementary files
Language English
Published at https://doi.org/10.1038/s41557-024-01477-1
Downloads
s41557-024-01477-1 (Final published version)
Supplementary materials
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