4.8 Article

On-Surface Synthesis of Non-Benzenoid Nanographenes by Oxidative Ring-Closure and Ring-Rearrangement Reactions

Journal

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume 142, Issue 31, Pages 13565-13572

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jacs.0c05668

Keywords

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Funding

  1. Swiss National Science Foundation [200020_182015]
  2. European Union [GrapheneCore2 785219]
  3. Office of Naval Research [N00014-18-1-2708]
  4. Swiss National Centre for Computational Design and Discovery of Novel Materials (MARVEL)
  5. Swiss National Supercomputing Centre (CSCS) [s746, s904]
  6. DFG-NSFC Joint Sino-German Research Project (EnhanceNano)
  7. Center for Advancing Electronics Dresden (cfaed)
  8. European Social Fund
  9. Federal State of Saxony (ESF-Project GRAPHD, TU Dresden)
  10. University of Hong Kong
  11. ITC
  12. International Excellence Graduate School on Emerging Materials and Processes Korea (iEGSEMP Korea) of TU Dresden's institutional strategy The Synergetic University

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Nanographenes (NGs) have gained increasing attention due to their immense potential as tailor-made organic materials for nanoelectronics and spintronics. They exhibit a rich spectrum of physicochemical properties that can be tuned by controlling the size or the edge structure or by introducing structural defects in the honeycomb lattice. Here, we report the design and on-surface synthesis of NGs containing several odd-membered polycycles induced by a thermal procedure on Au(111). Our scanning tunneling microscopy, noncontact atomic force microscopy, and scanning tunneling spectroscopy measurements, complemented by computational investigations, describe the formation of two nonbenzenoid NGs (2A,B) containing four embedded azulene units in the polycyclic framework, via on-surface oxidative ring-closure reactions. Interestingly, we observe surface-catalyzed skeletal ring rearrangement reactions in the NGs, which lead to the formation of additional heptagonal rings as well as pentalene and as-indacene units in 2A,B, respectively. 2A,B on Au(111) both exhibit narrow experimental frontier electronic gaps of 0.96 and 0.85 eV, respectively, and Fermi level pinning of their HOMOs together with considerable electron transfer to the substrate. Ab initio calculations estimate moderate open-shell biradical characters for the NGs in the gas phase.

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