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Surface Confined Hydrogenation of Graphene Nanoribbons

Authors :
Yi-Ying Sung
Harmina Vejayan
Christopher J. Baddeley
Neville V. Richardson
Federico Grillo
Renald Schaub
EPSRC
Scottish Funding Council
University of St Andrews. EaSTCHEM
University of St Andrews. School of Chemistry
University of St Andrews. Institute of Behavioural and Neural Sciences
Source :
ACS Nano. 16:10281-10291
Publication Year :
2022
Publisher :
American Chemical Society (ACS), 2022.

Abstract

YYS acknowledges support from the Funds for Women Graduates (GA-00558). FG and CJB acknowledge support from EPSRC through Grants EP/M029077/1 and EP/S027270/1. RS acknowledges financial support from the Scottish Funding Council through SRD-Grant HR07003. On-surface synthesis with designer precursor molecules is considered an effective method for preparing graphene nanoribbons (GNRs) of well-defined widths and with tunable electronic properties. Recent reports have shown that the band gap of ribbons doped with heteroatoms (such as boron, nitrogen, and sulfur) remains unchanged in magnitude in most cases. Nevertheless, theory predicts that a tunable band gap may be engineered by hydrogenation, but experimental evidence for this is so far lacking. Herein, surface-confined hydrogenation studies of 7-armchair graphene nanoribbons (7-AGNRs) grown on Au(111) surfaces, in an ultrahigh vacuum environment, are reported. GNRs are first prepared, then hydrogenated by exposure to activated hydrogen atoms. High resolution electron energy loss spectroscopy (HREELS) and scanning tunneling microscopy (STM) images reveal a self-limited hydrogenation process. By means of a combination of bond-resolved scanning tunneling microscopy (BRSTM) imaging and tip-induced site-specific dehydrogenation, the hydrogenation mechanism is studied in detail, and density-functional theory (DFT) calculation methods are used to complement the experimental findings. In all cases, the results demonstrate the successful modification of the electronic properties of the GNR/Au(111) system by edge and basal-plane hydrogenation, and a mechanism for the hydrogenation process is proposed. Publisher PDF

Details

ISSN :
1936086X and 19360851
Volume :
16
Database :
OpenAIRE
Journal :
ACS Nano
Accession number :
edsair.doi.dedup.....5b238cb8f44e67da15b3fd2ced6b2afe
Full Text :
https://doi.org/10.1021/acsnano.1c11372