We investigate the electronic and vibrational properties of bottom-up synthesized aligned armchair graphene nanoribbons of N = 7 carbon atoms width periodically doped by substitutional boron atoms (B-7AGNRs). Using angle-resolved photoemission spectroscopy and density functional theory calculations, we find that the dopant-derived valence and conduction band states are notably hybridized with electronic states of Au substrate and spread in energy. The interaction with the substrate leaves the bands with pure carbon character rather unperturbed. This results in an identical effective mass of $≈0.2 m_0$ for the next-highest valence band compared with pristine 7AGNRs. We probe the phonons of B-7AGNRs by ultrahigh-vacuum (UHV) Raman spectroscop...
Bottom-up approaches allow the production of ultranarrow and atomically precise graphene nanoribbons...
Bottom-up chemical reactions of selected molecular precursors on a gold surface can produce high qua...
Bottom-up approaches allow the production of ultra-narrow and atomically precise graphene nanoribbon...
We investigate the electronic and vibrational properties of bottom-up synthesized aligned armchair g...
We investigate the electronic and vibrational properties of bottom-up synthesized aligned armchair g...
We investigate the electronic and vibrational properties of bottom-up synthesized aligned armchair g...
We investigate the electronic and vibrational properties of bottom-up synthesized aligned armchair ...
We investigate the electronic and vibrational properties of bottom-up synthesized aligned armchair ...
We show that strong chemical interaction between boron doped graphene nanoribbons with N = 7 atoms w...
Bottom-up fabrication techniques enable atomically precise integration of dopant atoms into the stru...
A fundamental requirement for the development of advanced electronic device architectures based on g...
High-quality graphene nanoribbons (GNRs) grown by on-surface synthesis strategies with atomic precis...
Bottom-up fabrication techniques enable atomically precise integration of dopant atoms into the stru...
A fundamental requirement for the development of advanced electronic device architectures based on g...
Bottom-up fabrication techniques enable atomically precise integration of dopant atoms into the stru...
Bottom-up approaches allow the production of ultranarrow and atomically precise graphene nanoribbons...
Bottom-up chemical reactions of selected molecular precursors on a gold surface can produce high qua...
Bottom-up approaches allow the production of ultra-narrow and atomically precise graphene nanoribbon...
We investigate the electronic and vibrational properties of bottom-up synthesized aligned armchair g...
We investigate the electronic and vibrational properties of bottom-up synthesized aligned armchair g...
We investigate the electronic and vibrational properties of bottom-up synthesized aligned armchair g...
We investigate the electronic and vibrational properties of bottom-up synthesized aligned armchair ...
We investigate the electronic and vibrational properties of bottom-up synthesized aligned armchair ...
We show that strong chemical interaction between boron doped graphene nanoribbons with N = 7 atoms w...
Bottom-up fabrication techniques enable atomically precise integration of dopant atoms into the stru...
A fundamental requirement for the development of advanced electronic device architectures based on g...
High-quality graphene nanoribbons (GNRs) grown by on-surface synthesis strategies with atomic precis...
Bottom-up fabrication techniques enable atomically precise integration of dopant atoms into the stru...
A fundamental requirement for the development of advanced electronic device architectures based on g...
Bottom-up fabrication techniques enable atomically precise integration of dopant atoms into the stru...
Bottom-up approaches allow the production of ultranarrow and atomically precise graphene nanoribbons...
Bottom-up chemical reactions of selected molecular precursors on a gold surface can produce high qua...
Bottom-up approaches allow the production of ultra-narrow and atomically precise graphene nanoribbon...