Edge‐Driven Fringe‐Field Effects, Reduced Screening, and Bandgap Widening in Graphene Nanoribbons Enable Single‑Molecule Sensitivity

K Kavish Saini (Department of Chemistry and Biochemistry) E Ezra Bussmann (Center For Integrated Nanotechnologies Sandia National Laboratories Albuquerque New Mexico USA) A Aroop K. Behera (Center For Integrated Nanotechnologies Sandia National Laboratories Albuquerque New Mexico USA) D Daniel Gómez Bustos (Department of Chemistry and Biochemistry, University of Texas at El Paso , El Paso, Texas 79968,) M Manny de Jesus Lopez (Center For Integrated Nanotechnologies Sandia National Laboratories Albuquerque New Mexico USA) W Winson C. H. Kuo (Center For Integrated Nanotechnologies Los Alamos National Laboratories Los Alamos New Mexico USA) C C. Thomas Harris (Center For Integrated Nanotechnologies Sandia National Laboratories Albuquerque New Mexico USA) J John J. Nogan (Center For Integrated Nanotechnologies Sandia National Laboratories Albuquerque New Mexico USA) D Douglas V. Pete (Center For Integrated Nanotechnologies Sandia National Laboratories Albuquerque New Mexico USA) S Sreeprasad T. Sreenivasan (Department of Chemistry and Biochemistry)

Abstract

ABSTRACT Graphene nanoribbons (GNRs) offer promising platforms for single‐molecule sensing due to their quasi‐1D channels and discrete electronic states, providing superior sensitivity toward molecular perturbations. While prior studies emphasize smoother edges as essential for optimal performance, the potential benefits of controlled edge roughness remain largely unexplored. Additionally, most investigations focus on GNR arrays, leaving critical edge‐ and width‐dependent factors, including fringe fields, bandgap widening, interactions between adsorbing molecules and GNR atoms, density of states (DOS) suppression, and electrostatic screening lengths, and their collective impact on sensitivity, poorly understood. Here, we fabricated field‐effect transistors using individual GNRs (widths: 200–20 nm) and characterized their response to molecular adsorption with perfluorooctanoic acid as the model analyte. Narrower ribbons displayed significantly enhanced sensitivity, yielding a coverage‐normalized response of 116 ± 10 mV per molecule in 20 nm‐wide GNRs (from calibrated ensemble Dirac‐point shifts). Experimental and theoretical analyses reveal that this heightened sensitivity arises from stronger fringe fields, width‐dependent quantum confinement effects, reduced DOS, and increased edge roughness that facilitates molecular anchoring, enhanced orbital overlap, and improved charge transfer efficiency. Our findings challenge the conventional assumption that smoother edges inherently enhance sensor performance, demonstrating that controlled edge disorder substantially boosts molecular sensitivity in GNR sensors.

Article Details

Volume / Issue Vol. 38, Issue 28
Published May 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

K

Kavish Saini

Department of Chemistry and Biochemistry

E

Ezra Bussmann

Center For Integrated Nanotechnologies Sandia National Laboratories Albuquerque New Mexico USA

A

Aroop K. Behera

Center For Integrated Nanotechnologies Sandia National Laboratories Albuquerque New Mexico USA

D

Daniel Gómez Bustos

Department of Chemistry and Biochemistry, University of Texas at El Paso , El Paso, Texas 79968,

M

Manny de Jesus Lopez

Center For Integrated Nanotechnologies Sandia National Laboratories Albuquerque New Mexico USA

W

Winson C. H. Kuo

Center For Integrated Nanotechnologies Los Alamos National Laboratories Los Alamos New Mexico USA

C

C. Thomas Harris

Center For Integrated Nanotechnologies Sandia National Laboratories Albuquerque New Mexico USA

J

John J. Nogan

Center For Integrated Nanotechnologies Sandia National Laboratories Albuquerque New Mexico USA

D

Douglas V. Pete

Center For Integrated Nanotechnologies Sandia National Laboratories Albuquerque New Mexico USA

S

Sreeprasad T. Sreenivasan

Department of Chemistry and Biochemistry