Tailoring Electronic Properties of Precision Graphene Nanoribbons via Nanopore Engineering

K Kun Liu G Guanzhao Wen (Max Planck Institute for Polymer Research, Ackermannweg 10, Mainz 55128, Germany) G Gianluca Serra (Dipartimento Di Chimica Materiali Ed Ingegneria Chimica “G. Natta” Politecnico Di Milano Milano Italy) N Nicolás Arisnabarreta (Division of Molecular Imaging and Photonics Department of Chemistry KU Leuven Leuven Belgium) H Hongde Yu (Faculty of Chemistry and Food Chemistry, Technische Universität Dresden, Bergstraße 66c, 01062 Dresden, Germany) A Andrea Lucotti (Department of Chemistry, Materials, and Chemical Engineering “Giulio Natta”, Politecnico di Milano, Piazza Leonardo da Vinci 32, 20133 Milano, Italy) Y Yarden Peleg Walg (Center For Advancing Electronics Dresden (cfaed) & Faculty of Chemistry and Food Chemistry Technische Universität Dresden Dresden Germany) H Hartmut Komber (Leibniz‐Institut For Polymerforschung Dresden eV. Dresden Germany) Z Zhen‐Lin Qiu (Max Planck Institute of Microstructure Physics Halle (Saale) Germany) Q Qing‐Song Deng (State Key Laboratory for Physical Chemistry of Solid Surfaces and Department of Chemistry College of Chemistry and Chemical Engineering Xiamen University Xiamen P. R. China) R Ran He (Leibniz Institute for Solid State and Materials Research IFW Dresden) W Wenhui Niu (Max Planck Institute of Microstructure Physics Halle Germany) T Thomas Heine E Eike Brunner (Chair of Bioanalytical Chemistry) M Mischa Bonn S Steven De Feyter (Division of Molecular Imaging and Photonics, Department of Chemistry) M Matteo Tommasini (Dipartimento di Chimica, Materiali e Ingegneria Chimica “Giulio Natta”) H Hai I. Wang (Max Planck Institute for Polymer Research, Ackermannweg 10, Mainz 55128, Germany) J Ji Ma (College of Materials Science and Optoelectronic Technology) X Xinliang Feng

Abstract

ABSTRACT The precise incorporation of nanopores into graphene nanoribbons (GNRs) offers a complementary strategy for modulating their opto‐electronic properties beyond conventional width and edge engineering. However, a systematic understanding of the relationship between the structure and electronic properties of porous GNRs ( pGNRs ) remains experimentally unexplored due to the lack of rational synthetic strategies. Herein, we report two novel porous GNRs ( pGNR 1 and pGNR 2 ) synthesized via solution‐phase methods, featuring periodically arranged [18]annulene nanopores and gulf‐edged architectures, along with a nonporous GNR ( npGNR ) as a counterpart. Utilizing efficient Diels‐Alder polymerization and Scholl‐type cyclization, these GNRs attain average lengths of up to 60 nm. The chemical identities of the synthesized GNRs were comprehensively characterized by IR, Raman, and solid‐state NMR spectroscopy, complemented by theoretical calculations. To further elucidate the structural features underlying the observed properties, three representative model compounds ( 1 , 2 , and 3 ) corresponding to segments of the respective GNRs were synthesized and analyzed. UV–vis and THz spectroscopic analyses demonstrate that npGNR exhibits a relatively narrow optical bandgap of 1.63 eV and a high intrinsic charge carrier mobility of ∼40 cm 2  V −1  s −1 , whereas pGNR 2 displays a wider bandgap of 1.91 eV with a reduced mobility of ∼27 cm 2  V −1  s −1 . This study systematically elucidates the effects of nanopore incorporation on the electronic structure and charge transport properties of GNRs, offering a rational design framework for the design of nanopore‐engineered carbon‐based electronic materials.

Article Details

Volume / Issue Vol. 65, Issue 14
Published March 27, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (20)

K

Kun Liu

G

Guanzhao Wen

Max Planck Institute for Polymer Research, Ackermannweg 10, Mainz 55128, Germany

G

Gianluca Serra

Dipartimento Di Chimica Materiali Ed Ingegneria Chimica “G. Natta” Politecnico Di Milano Milano Italy

N

Nicolás Arisnabarreta

Division of Molecular Imaging and Photonics Department of Chemistry KU Leuven Leuven Belgium

H

Hongde Yu

Faculty of Chemistry and Food Chemistry, Technische Universität Dresden, Bergstraße 66c, 01062 Dresden, Germany

A

Andrea Lucotti

Department of Chemistry, Materials, and Chemical Engineering “Giulio Natta”, Politecnico di Milano, Piazza Leonardo da Vinci 32, 20133 Milano, Italy

Y

Yarden Peleg Walg

Center For Advancing Electronics Dresden (cfaed) & Faculty of Chemistry and Food Chemistry Technische Universität Dresden Dresden Germany

H

Hartmut Komber

Leibniz‐Institut For Polymerforschung Dresden eV. Dresden Germany

Z

Zhen‐Lin Qiu

Max Planck Institute of Microstructure Physics Halle (Saale) Germany

Q

Qing‐Song Deng

State Key Laboratory for Physical Chemistry of Solid Surfaces and Department of Chemistry College of Chemistry and Chemical Engineering Xiamen University Xiamen P. R. China

R

Ran He

Leibniz Institute for Solid State and Materials Research IFW Dresden

W

Wenhui Niu

Max Planck Institute of Microstructure Physics Halle Germany

T

Thomas Heine

E

Eike Brunner

Chair of Bioanalytical Chemistry

M

Mischa Bonn

S

Steven De Feyter

Division of Molecular Imaging and Photonics, Department of Chemistry

M

Matteo Tommasini

Dipartimento di Chimica, Materiali e Ingegneria Chimica “Giulio Natta”

H

Hai I. Wang

Max Planck Institute for Polymer Research, Ackermannweg 10, Mainz 55128, Germany

J

Ji Ma

College of Materials Science and Optoelectronic Technology

X

Xinliang Feng