Coupled spin states in armchair graphene nanoribbons with asymmetric zigzag edge extensions
Qiang Sun, Xuelin Yao, Oliver Groning, Kristjan Eimre, Carlo A., Pignedoli, Klaus M\"ullen, Akimitsu Narita, Roman Fasel, Pascal Ruffieux

TL;DR
This paper demonstrates the design and fabrication of graphene nanoribbons with asymmetric zigzag edge extensions that induce coupled spin states, enabling control over magnetic interactions and the creation of spin chains with complex magnetic ground states.
Contribution
It introduces a bottom-up fabrication method for graphene nanoribbons with sublattice imbalanced edge structures that exhibit tunable magnetic interactions and spin chain formation.
Findings
Observation of Hubbard-split states in zigzag edge extensions
Control of magnetic coupling (ferromagnetic, antiferromagnetic, quenching)
Demonstration of ferromagnetic spin chains along nanoribbons
Abstract
Carbon-based magnetic structures promise significantly longer coherence times than traditional magnetic materials, which is of fundamental importance for spintronic applications. An elegant way of achieving carbon-based magnetic moments is the design of graphene nanostructures with an imbalanced occupation of the two sublattices forming the carbon honeycomb lattice. According to Lieb's theorem, this induces local magnetic moments that are proportional to the sublattice imbalance. Exact positioning of sublattice imbalanced nanostructures in graphene nanomaterials hence offers a route to control interactions between induced local magnetic moments and to obtain graphene nanomaterials with magnetically non-trivial ground states. Here, we show that such sublattice imbalanced nanostructures can be incorporated along a large band gap armchair graphene nanoribbon on the basis of asymmetric…
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Taxonomy
TopicsGraphene research and applications · Quantum and electron transport phenomena · Advancements in Battery Materials
