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Molecular Bridge Engineering for Tuning Quantum Electronic Transport and Anisotropy in Nanoporous Graphene

Authors :
Moreno, César
Diaz de Cerio, Xabier
Vilas-Varela, Manuel
Tenorio, Maria
Sarasola, Ane
Brandbyge, Mads
Peña, Diego
Garcia-Lekue, Aran
Mugarza, Aitor
Moreno, César
Diaz de Cerio, Xabier
Vilas-Varela, Manuel
Tenorio, Maria
Sarasola, Ane
Brandbyge, Mads
Peña, Diego
Garcia-Lekue, Aran
Mugarza, Aitor
Source :
Moreno , C , Diaz de Cerio , X , Vilas-Varela , M , Tenorio , M , Sarasola , A , Brandbyge , M , Peña , D , Garcia-Lekue , A & Mugarza , A 2023 , ' Molecular Bridge Engineering for Tuning Quantum Electronic Transport and Anisotropy in Nanoporous Graphene ' , Journal of the American Chemical Society , vol. 145 , no. 16 , pp. 8988-8995 .
Publication Year :
2023

Abstract

Recent advances on surface-assisted synthesis have demonstrated that arrays of nanometer wide graphene nanoribbons can be laterally coupled with atomic precision to give rise to a highly anisotropic nanoporous graphene structure. Electronically, this graphene nanoarchitecture can be conceived as a set of weakly coupled semiconducting 1D nanochannels with electron propagation characterized by substantial interchannel quantum interferences. Here, we report the synthesis of a new nanoporous graphene structure where the interribbon electronic coupling can be controlled by the different degrees of freedom provided by phenylene bridges that couple the conducting channels. This versatility arises from the multiplicity of phenylene cross-coupling configurations, which provides a robust chemical knob, and from the interphenyl twist angle that acts as a fine-tunable knob. The twist angle is significantly altered by the interaction with the substrate, as confirmed by a combined bond-resolved scanning tunneling microscopy (STM) and ab initio analysis, and should accordingly be addressable by other external stimuli. Electron propagation simulations demonstrate the capability of either switching on/off or modulating the interribbon coupling by the corresponding use of the chemical or the conformational knob. Molecular bridges therefore emerge as efficient tools to engineer quantum transport and anisotropy in carbon-based 2D nanoarchitectures.

Details

Database :
OAIster
Journal :
Moreno , C , Diaz de Cerio , X , Vilas-Varela , M , Tenorio , M , Sarasola , A , Brandbyge , M , Peña , D , Garcia-Lekue , A & Mugarza , A 2023 , ' Molecular Bridge Engineering for Tuning Quantum Electronic Transport and Anisotropy in Nanoporous Graphene ' , Journal of the American Chemical Society , vol. 145 , no. 16 , pp. 8988-8995 .
Notes :
application/pdf, English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1397136536
Document Type :
Electronic Resource