On‐Surface Synthesis of Non‐Benzenoid Nanographenes Embedding Azulene and Stone‐Wales Topologies

Author:

Biswas Kalyan1,Chen Qifan23,Obermann Sebastian4,Ma Ji45ORCID,Soler‐Polo Diego2,Melidonie Jason4,Barragán Ana1,Sánchez‐Grande Ana1ORCID,Lauwaet Koen1ORCID,Gallego José M.6ORCID,Miranda Rodolfo17ORCID,Écija David18ORCID,Jelínek Pavel29ORCID,Feng Xinliang45ORCID,Urgel José I.18ORCID

Affiliation:

1. IMDEA Nanoscience C/Faraday 9, Campus de Cantoblanco 28049 Madrid Spain

2. Institute of Physics of the Czech Academy of Science CZ-16253 Praha Czech Republic

3. Faculty of Mathematics and Physics Charles University V Holešovičkách 2 180 00 Praha Czech Republic

4. Center for Advancing Electronics Dresden (cfaed) & Faculty of Chemistry and Food Chemistry Technische Universität Dresden D-01069 Dresden Germany

5. Max Planck Institute of Microstructure Physics Weinberg 2 06120 Halle Germany

6. Instituto de Ciencia de Materiales de Madrid (ICMM) CSIC Cantoblanco 28049 Madrid Spain

7. Departamento de Física de la Materia Condensada Universidad Autónoma de Madrid 28049 Madrid Spain

8. Unidad de Nanomateriales avanzados IMDEA Nanoscience Unidad asociada al CSIC por el ICMM 28049 Madrid Spain

9. Regional Centre of Advanced Technologies and Materials Palacký University Olomouc 771 46 Olomouc Czech Republic

Abstract

AbstractThe incorporation of non‐benzenoid motifs in graphene nanostructures significantly impacts their properties, making them attractive for applications in carbon‐based electronics. However, understanding how specific non‐benzenoid structures influence their properties remains limited, and further investigations are needed to fully comprehend their implications. Here, we report an on‐surface synthetic strategy toward fabricating non‐benzenoid nanographenes containing different combinations of pentagonal and heptagonal rings. Their structure and electronic properties were investigated via scanning tunneling microscopy and spectroscopy, complemented by computational investigations. After thermal activation of the precursor P on the Au(111) surface, we detected two major nanographene products. Nanographene Aa−a embeds two azulene units formed through oxidative ring‐closure of methyl substituents, while Aa−s contains one azulene unit and one Stone‐Wales defect, formed by the combination of oxidative ring‐closure and skeletal ring‐rearrangement reactions. Aa−a exhibits an antiferromagnetic ground state with the highest magnetic exchange coupling reported up to date for a non‐benzenoid containing nanographene, coexisting with side‐products with closed shell configurations resulted from the combination of ring‐closure and ring‐rearragement reactions (Ba−a, Ba−s, Bs‐a and Bs−s). Our results provide insights into the single gold atom assisted synthesis of novel NGs containing non‐benzenoid motifs and their tailored electronic/magnetic properties.

Publisher

Wiley

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