Aryl Radical Geometry Determines Nanographene Formation on Au(111)

Publication date

2016-10-10

Authors

Jacobse, P.H.ISNI 0000000493302429
Van Den Hoogenband, Adrianus
Moret, Marc EtienneORCID 0000-0002-3137-6073ISNI 0000000436414547
Klein Gebbink, R.J.M.ISNI 0000000388707889
Swart, IngmarORCID 0000-0003-3201-7301ISNI 0000000390199991

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Document Type

Article
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License

taverne

Abstract

The Ullmann coupling has been used extensively as a synthetic tool for the formation of C−C bonds on surfaces. Thus far, most syntheses made use of aryl bromides or aryl iodides. We investigated the applicability of an aryl chloride in the bottom-up assembly of graphene nanoribbons. Specifically, the reactions of 10,10′-dichloro-9,9′-bianthryl (DCBA) on Au(111) were studied. Using atomic resolution non-contact AFM, the structure of various coupling products and intermediates were resolved, allowing us to reveal the important role of the geometry of the intermediate aryl radicals in the formation mechanism. For the aryl chloride, cyclodehydrogenation occurs before dehalogenation and polymerization. Due to their geometry, the planar bisanthene radicals display a different coupling behavior compared to the staggered bianthryl radicals formed when aryl bromides are used. This results in oligo- and polybisanthenes with predominantly fluoranthene-type connections.

Keywords

atomic force microscopy, graphene nanoribbons, scanning tunnelling microscopy, surface synthesis, Ullmann coupling, Taverne, Catalysis, General Chemistry

Citation

Jacobse, P H, van den Hoogenband, A, Moret, M E, Klein Gebbink, R J M & Swart, I 2016, 'Aryl Radical Geometry Determines Nanographene Formation on Au(111)', Angewandte Chemie - International Edition, vol. 55, no. 42, pp. 13052-13055. https://doi.org/10.1002/anie.201606440