Cyclodehydrogenation of molecular nanographene precursors catalyzed by atomic hydrogen
Abstract
Abstract Atomically precise synthesis of graphene nanostructures on semiconductors and insulators has been a formidable challenge. In particular, the metallic substrates needed to catalyze cyclodehydrogenative planarization reactions limit subsequent applications that exploit the electronic and/or magnetic structure of graphene derivatives. Here, we introduce a protocol in which an on-surface reaction is initiated and carried out regardless of the substrate type. We demonstrate that, counterintuitively, atomic hydrogen can play the role of a catalyst in the cyclodehydrogenative planarization reaction. The high efficiency of the method is demonstrated by the nanographene synthesis on metallic Au, semiconducting TiO2, Ge:H, as well as on inert and insulating Si/SiO2 and thin NaCl layers. The hydrogen-catalyzed cyclodehydrogenation reaction reported here leads towards the integration of graphene derivatives in optoelectronic devices as well as developing the field of on-surface synthesis by means of catalytic transformations. It also inspires merging of atomically shaped graphene-based nanostructures with low-dimensional inorganic units into functional devices.
Article Details
Authors (8)
Rafal Zuzak
Pawel Dabczynski
Jesús Castro-Esteban
José Ignacio Martínez
Instituto de Ciencia de Materiales de Madrid (ICMM-CSIC). C/Sor Juana Inés de la Cruz 3, Madrid 28049, Spain
Mads Engelund
Dolores Pérez
Diego Peña
Center for Research in Biological Chemistry and Molecular Materials, and Department of Organic Chemistry
Szymon Godlewski