Engineering Graphene Nanoribbons via Periodically Embedding Oxygen Atoms

Y Yan Zhao L Li‐Xia Kang (School of Chemistry and Molecular Engineering East China University of Science & Technology Shanghai 200237 China) Y Yi‐Jun Wang (State Key Laboratory of Natural Medicines School of Pharmacy China Pharmaceutical University Nanjing China) Y Yi Wu G Guang‐Yan Xing (School of Chemistry and Molecular Engineering East China University of Science & Technology Shanghai 200237 China) S Shi‐Wen Li (School of Chemistry and Molecular Engineering East China University of Science & Technology Shanghai 200237 China) J Jinliang Pan (BNLMS, College of Chemistry and Molecular Engineering) N Nie‐Wei Wang (College of Physics Science and Technology Hebei University Baoding 071002 China) Y Yin‐Ti Ren (College of Physics Science and Technology Hebei University Baoding 071002 China) Y Ying Wang Y Ya‐Cheng Zhu (School of Chemistry and Molecular Engineering East China University of Science & Technology Shanghai 200237 China) X Xing‐Qiang Shi (College of Physics Science and Technology Hebei University Baoding 071002 China) M Mengxi Liu (CAS Key Laboratory of Standardization and Measurement for Nanotechnology) X Xiaohui Qiu (CAS Key Laboratory of Standardization and Measurement for Nanotechnology) P Pei‐Nian Liu (State Key Laboratory of Natural Medicines School of Pharmacy China Pharmaceutical University Nanjing China) D Deng‐Yuan Li (State Key Laboratory of Natural Medicines School of Pharmacy China Pharmaceutical University Nanjing China)

Abstract

Abstract Heteroatom doping is an important method for engineering graphene nanoribbons (GNRs) because of its ability to modify electronic properties by introducing extra electrons or vacancies. However, precisely integrating oxygen atoms into the lattice of GNRs is unexplored, and the resulting electronic properties remain elusive. Here, we achieve the precise embedding of oxygen atoms into the lattice of GNRs via in situ formation of pyrans, synthesizing two types of oxygen‐doped GNRs (O‐doped chevron‐GNR and O‐doped chiral (2,1)‐GNR). Using scanning tunneling microscopy, noncontact atomic force microscopy, and density functional theory calculations, the atomic structures and electronic properties of O‐doped GNRs are determined, demonstrating that both GNRs are direct bandgap semiconductors with different sensitivities to oxygen dopants. Oxygen dopants have a minor impact on the bandgap of chevron‐GNR but a significant effect on the bandgap of chiral (2,1)‐GNR, which is attributed to the difference in density of states near the Fermi level between substituted intrinsic carbon atoms and their pristine counterparts. Compared with the pristine chiral (2,1)‐GNR, the band structure of O‐doped chiral (2,1)‐GNR exhibits unexpected band edges transition, which is ascribed to sp 2 ‐hybridized oxygen atoms which introduces additional electrons to the conduction band of chiral (2,1)‐GNR, leading to the upward shift of Fermi surface.

Article Details

Volume / Issue Vol. 64, Issue 34
Published August 18, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (16)

Y

Yan Zhao

L

Li‐Xia Kang

School of Chemistry and Molecular Engineering East China University of Science & Technology Shanghai 200237 China

Y

Yi‐Jun Wang

State Key Laboratory of Natural Medicines School of Pharmacy China Pharmaceutical University Nanjing China

Y

Yi Wu

G

Guang‐Yan Xing

School of Chemistry and Molecular Engineering East China University of Science & Technology Shanghai 200237 China

S

Shi‐Wen Li

School of Chemistry and Molecular Engineering East China University of Science & Technology Shanghai 200237 China

J

Jinliang Pan

BNLMS, College of Chemistry and Molecular Engineering

N

Nie‐Wei Wang

College of Physics Science and Technology Hebei University Baoding 071002 China

Y

Yin‐Ti Ren

College of Physics Science and Technology Hebei University Baoding 071002 China

Y

Ying Wang

Y

Ya‐Cheng Zhu

School of Chemistry and Molecular Engineering East China University of Science & Technology Shanghai 200237 China

X

Xing‐Qiang Shi

College of Physics Science and Technology Hebei University Baoding 071002 China

M

Mengxi Liu

CAS Key Laboratory of Standardization and Measurement for Nanotechnology

X

Xiaohui Qiu

CAS Key Laboratory of Standardization and Measurement for Nanotechnology

P

Pei‐Nian Liu

State Key Laboratory of Natural Medicines School of Pharmacy China Pharmaceutical University Nanjing China

D

Deng‐Yuan Li

State Key Laboratory of Natural Medicines School of Pharmacy China Pharmaceutical University Nanjing China