Circumventing the Stability Problems of Graphene Nanoribbon Zigzag Edges
arXiv:2107.12754 · doi:10.1038/s41557-022-01042-8
Abstract
Carbon nanostructures with zigzag edges exhibit unique properties with exciting potential applications. Such nanostructures are generally synthesized under vacuum because their zigzag edges are unstable under ambient conditions: a barrier that must be surmounted to achieve their scalable exploitation. Here, we prove the viability of chemical protection/deprotection strategies for this aim, demonstrated on labile chiral graphene nanoribbons (chGNRs). Upon hydrogenation, the chGNRs survive an exposure to air, after which they are easily converted back to their original structure via annealing. We also approach the problem from another angle by synthesizing a chemically stable oxidized form of the chGNRs that can be converted to the pristine hydrocarbon form via hydrogenation and annealing. These findings may represent an important step toward the integration of zigzag-edged nanostructures in devices.
References in corpus (11)
- Emergence of magnetism in graphene materials and nanostructures
- The mechanism of high-resolution STM/AFM imaging with functionalized tips
- Width-Dependent Band Gap in Armchair Graphene Nanoribbons Reveals Fermi Level Pinning on Au(111)
- Substrate-Independent Growth of Atomically Precise Chiral Graphene Nanoribbons
- Topological phase transition in chiral graphene nanoribbons: from edge bands to end states
- Principles and simulations of high-resolution STM imaging with flexible tip apex
- Magnetic Interactions Between Radical Pairs in Chiral Graphene Nanoribbons
- Electrically addressing the spin of a magnetic porphyrin through covalently connected graphene electrodes
- Band Depopulation of Graphene Nanoribbons Induced by Chemical Gating with Amino Groups
- Order from a mess: the growth of 5-armchair graphene nanoribbons
- Doping of Graphene Nanoribbons via Functional Group Edge Modification
Cited by in corpus (4)
- Cove-edged Chiral Graphene Nanoribbons with Chirality-Dependent Bandgap and Carrier Mobility
- Fabrication of Spin-1/2 Heisenberg Antiferromagnetic Chains via Combined On-surface Synthesis and Reduction for Spinon Detection
- On-surface synthesis and characterization of Teranthene and Hexanthene: Ultrashort graphene nanoribbons with mixed armchair and zigzag edges
- Scanning tunneling microscopy using CO-terminated probes with tilted and straight geometries