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Selective activation of four quasi-equivalent C-H bonds yields N-doped graphene nanoribbons with partial corannulene motifs.


ABSTRACT: Selective C-H bond activation is one of the most challenging topics for organic reactions. The difficulties arise not only from the high C-H bond dissociation enthalpies but also the existence of multiple equivalent/quasi-equivalent reaction sites in organic molecules. Here, we successfully achieve the selective activation of four quasi-equivalent C-H bonds in a specially designed nitrogen-containing polycyclic hydrocarbon (N-PH). Density functional theory calculations reveal that the adsorption of N-PH on Ag(100) differentiates the activity of the four ortho C(sp3) atoms in the N-heterocycles into two groups, suggesting a selective dehydrogenation, which is demonstrated by sequential-annealing experiments of N-PH/Ag(100). Further annealing leads to the formation of N-doped graphene nanoribbons with partial corannulene motifs, realized by the C-H bond activation process. Our work provides a route of designing precursor molecules with ortho C(sp3) atom in an N-heterocycle to realize surface-induced selective dehydrogenation in quasi-equivalent sites.

SUBMITTER: Gao Y 

PROVIDER: S-EPMC9576682 | biostudies-literature | 2022 Oct

REPOSITORIES: biostudies-literature

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Selective activation of four quasi-equivalent C-H bonds yields N-doped graphene nanoribbons with partial corannulene motifs.

Gao Yixuan Y   Huang Li L   Cao Yun Y   Richter Marcus M   Qi Jing J   Zheng Qi Q   Yang Huan H   Ma Ji J   Chang Xiao X   Fu Xiaoshuai X   Palma Carlos-Andres CA   Lu Hongliang H   Zhang Yu-Yang YY   Cheng Zhihai Z   Lin Xiao X   Ouyang Min M   Feng Xinliang X   Du Shixuan S   Gao Hong-Jun HJ  

Nature communications 20221017 1


Selective C-H bond activation is one of the most challenging topics for organic reactions. The difficulties arise not only from the high C-H bond dissociation enthalpies but also the existence of multiple equivalent/quasi-equivalent reaction sites in organic molecules. Here, we successfully achieve the selective activation of four quasi-equivalent C-H bonds in a specially designed nitrogen-containing polycyclic hydrocarbon (N-PH). Density functional theory calculations reveal that the adsorption  ...[more]

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