On‐Surface Synthesis and Characterization of Cumulene‐Linked Stone‐Wales Polymers
Abstract
Abstract Structural, chemical, and extrinsic modifications of graphene‐based nanostructures enable bandgap tuning, optoelectronics, spintronics, and quantum materials design. A well‐known approach to modify their electronic properties involves introducing nonbenzenoid ring topologies in their ideal sp 2 ‐hybridized hexagonal lattice, such as azulene or Stone‐Wales (SW) defects. However, despite the unique structural and electronic characteristics that these nonalternant defects induce, their systematic incorporation in graphene‐based nanostructures remains challenging. Here, we demonstrate the on‐surface synthesis of one‐dimensional SW‐based polymers linked through cumulene bonds on the Au(111) surface via thermal and visible‐light‐induced reactions of a tailored molecular precursor. Scanning tunneling and noncontact atomic force microscopies reveal the nonplanar structure of SW‐based units within the polymer chain, while the chemical structure of the polymer has been verified by Raman spectroscopy in combination with theoretical modeling. Additionally, scanning tunneling spectroscopy measurements show an experimental bandgap of 1.8 eV, which significantly differs from its isostructural cumulene‐bridged bisanthene analogs. Our results highlight the critical role of SW defects in the structural and electronic properties of carbon‐based conjugated polymers, advancing their design with prospects in next‐generation optoelectronic devices.
Article Details
Authors (16)
Elena Pérez‐Elvira
IMDEA Nanoscience, C/ Faraday 9 Campus De Cantoblanco Madrid Spain
Fupeng Wu
Max Planck Institute of Microstructure Physics Weinberg 2 06120 Halle Germany
Jeong Ha Hwang
Department of Semiconductor Engineering Gyeongsang National University (GNU) Jinju Gyeongnam 52828 Republic of Korea
Ji Ma
College of Materials Science and Optoelectronic Technology
Lucia Palomino‐Ruiz
Empa‐Swiss Federal Laboratories for Materials Science and Technology Überlandstrasse 129 Dübendorf 8600 Switzerland
Sofia Canola
Institute of Physics
Ana Barragán
IMDEA Nanoscience
Koen Lauwaet
IMDEA Nanoscience, C/ Faraday 9 Campus De Cantoblanco Madrid Spain
José M. Gallego
Instituto De Ciencia de Materiales de Madrid (ICMM) CSIC, Cantoblanco Madrid Spain
Rodolfo Miranda
IMDEA Nanoscience, C/ Faraday 9 Campus De Cantoblanco Madrid Spain
Mickael L. Perrin
Empa‐Swiss Federal Laboratories for Materials Science and Technology Überlandstrasse 129 Dübendorf 8600 Switzerland
David Écija
IMDEA Nanoscience
Aurelio Gallardo
IMDEA Nanoscience, C/ Faraday 9 Campus De Cantoblanco Madrid Spain
Gabriela Borin Barin
Empa‐Swiss Federal Laboratories for Materials Science and Technology Überlandstrasse 129 Dübendorf 8600 Switzerland
Xinliang Feng
José I. Urgel
IMDEA Nanoscience