Controlled Quantum Dot Formation in Atomically Engineered Graphene Nanoribbon Field-Effect Transistors
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BORIS DOI
Publisher DOI
PubMed ID
32223259
Description
Graphene nanoribbons (GNRs) have attracted strong interest from researchers worldwide, as they constitute an emerging class of quantum-designed materials. The major challenges toward their exploitation in electronic applications include reliable contacting, complicated by their small size (<50 nm), and the preservation of their physical properties upon device integration. In this combined experimental and theoretical study, we report on the quantum dot behavior of atomically precise GNRs integrated in a device geometry. The devices consist of a film of aligned five-atom-wide GNRs (5-AGNRs) transferred onto graphene electrodes with a sub 5 nm nanogap. We demonstrate that these narrow-bandgap 5-AGNRs exhibit metal-like behavior at room temperature and single-electron transistor behavior for temperatures below 150 K. By performing spectroscopy of the molecular levels at 13 K, we obtain addition energies in the range of 200-300 meV. DFT calculations predict comparable addition energies and reveal the presence of two electronic states within the bandgap of infinite ribbons when the finite length of the 5-AGNR is accounted for. By demonstrating the preservation of the 5-AGNRs' molecular levels upon device integration, as demonstrated by transport spectroscopy, our study provides a critical step forward in the realization of more exotic GNR-based nanoelectronic devices.
Date of Publication
2020
Publication Type
Article
Subject(s)
500 - Science::530 - Physics
500 - Science::540 - Chemistry
Language(s)
en
Contributor(s)
El Abbassi, Maria | |
Perrin, Mickael L. | |
Barin, Gabriela Borin | |
Sangtarash, Sara | |
Overbeck, Jan | |
Braun, Oliver | |
Lambert, Colin J. | |
Sun, Qiang | |
Prechtl, Thorsten | |
Narita, Akimitsu | |
Müllen, Klaus | |
Ruffieux, Pascal | |
Sadeghi, Hatef | |
Calame, Michel |
Additional Credits
Lehrkörper, Phil.-nat. Fakultät
Series
ACS nano
Publisher
American Chemical Society
ISSN
1936-0851
Access(Rights)
open.access