Issue 2, 2024

The effect of water on gold supported chiral graphene nanoribbons: rupture of conjugation by an alternating hydrogenation pattern

Abstract

In the last few years we have observed a breakpoint in the development of graphene-derived technologies, such as liquid phase filtering and their application to electronics. In most of these cases, they imply exposure of the material to solvents and ambient moisture, either in the fabrication of the material or the final device. The present study demonstrates the sensitivity of graphene nanoribbon (GNR) zigzag edges to water, even in extremely low concentrations. We have addressed the unique reactivity of (3,1)-chiral GNR with moisture on Au(111). Water shows a reductive behaviour, hydrogenating the central carbon of the zigzag segments. By combining scanning tunnelling microscopy (STM) with simulations, we demonstrate how their reactivity reaches a thermodynamic limit when half of the unit cells are reduced, resulting in an alternating pattern of hydrogenated and pristine unit cells starting from the terminal segments. Once a quasi-perfect alternation is reached, the reaction stops regardless of the water concentration. The hydrogenated segments limit the electronic conjugation of the GNR, but the reduction can be reversed both by tip manipulation and annealing. Selective tip-induced dehydrogenation allowed the stabilization of radical states at the edges of the ribbons, while the annealing of the sample completely recovered the original, pristine GNR.

Graphical abstract: The effect of water on gold supported chiral graphene nanoribbons: rupture of conjugation by an alternating hydrogenation pattern

Supplementary files

Article information

Article type
Paper
Submitted
19 Jun 2023
Accepted
12 Nov 2023
First published
17 Nov 2023
This article is Open Access
Creative Commons BY-NC license

Nanoscale, 2024,16, 734-741

The effect of water on gold supported chiral graphene nanoribbons: rupture of conjugation by an alternating hydrogenation pattern

A. Berdonces-Layunta, A. Matěj, A. Jiménez-Martín, J. Lawrence, M. S. G. Mohammed, T. Wang, B. Mallada, B. de la Torre, A. Martínez, M. Vilas-Varela, R. Nieman, H. Lischka, D. Nachtigallová, D. Peña, P. Jelínek and D. G. de Oteyza, Nanoscale, 2024, 16, 734 DOI: 10.1039/D3NR02933F

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