"The electronic structure and spin magnetism for few-layer-graphene nanoribbons synthesized by chemical vapor deposition have been investigated using near-edge x-ray absorption fine structure (NEXAFS) and electron-spin resonance (ESR). For the pristine sample, a prepeak was observed below the pi* peak close to the Fermi level in NEXAFS, indicating the presence of additional electronic states close to the Fermi level. The intensity of this prepeak decreased with increasing annealing temperature and disappeared after annealing above 1500 degrees C. The ESR spectra, which proved the presence of localized spins, tracked the annealing-temperature-dependent behavior of the prepeak with fidelity. The NEXAFS and ESR results jointly confirm the exis...
Zigzag edges of graphene nanostructures host localized electronic states that are predicted to be sp...
Nanographenes with zigzag edges are predicted to manifest non-trivial π-magnetism resulting from the...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Materials Science and Engineering, ...
The electronic structure and spin magnetism for few-layer-graphene nanoribbons synthesized by chemic...
The electronic structure and spin magnetism for few-layer-graphene nanoribbons synthesized by chemic...
The electron spin states of zigzag graphene nanoribbon (ZGNR) edge play a pivotal role in the applic...
Graphene, a single-layer network of carbon atoms, shows outstanding electrical and mechanical proper...
The electronic structure of nanographene depends crucially on its edge shape. The periphery of an ar...
Graphene, a single-layer network of carbon atoms, has outstanding electrical and mechanical properti...
Graphene, a single-layer network of carbon atoms, shows outstanding electrical and mechanical proper...
We extensively characterize the electronic structure of ultranarrow graphene nanoribbons (GNRs) with...
Development of graphene spintronic devices relies on transforming it into a material with a spin ord...
We unveil the nature of the structural disorder in bottom-up zigzag graphene nanoribbons along with ...
[[abstract]]Due to the weak spin-orbit interaction and the peculiar relativistic dispersion in graph...
Graphene, a single-layer network of carbon atoms, has outstanding electrical and mechanical properti...
Zigzag edges of graphene nanostructures host localized electronic states that are predicted to be sp...
Nanographenes with zigzag edges are predicted to manifest non-trivial π-magnetism resulting from the...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Materials Science and Engineering, ...
The electronic structure and spin magnetism for few-layer-graphene nanoribbons synthesized by chemic...
The electronic structure and spin magnetism for few-layer-graphene nanoribbons synthesized by chemic...
The electron spin states of zigzag graphene nanoribbon (ZGNR) edge play a pivotal role in the applic...
Graphene, a single-layer network of carbon atoms, shows outstanding electrical and mechanical proper...
The electronic structure of nanographene depends crucially on its edge shape. The periphery of an ar...
Graphene, a single-layer network of carbon atoms, has outstanding electrical and mechanical properti...
Graphene, a single-layer network of carbon atoms, shows outstanding electrical and mechanical proper...
We extensively characterize the electronic structure of ultranarrow graphene nanoribbons (GNRs) with...
Development of graphene spintronic devices relies on transforming it into a material with a spin ord...
We unveil the nature of the structural disorder in bottom-up zigzag graphene nanoribbons along with ...
[[abstract]]Due to the weak spin-orbit interaction and the peculiar relativistic dispersion in graph...
Graphene, a single-layer network of carbon atoms, has outstanding electrical and mechanical properti...
Zigzag edges of graphene nanostructures host localized electronic states that are predicted to be sp...
Nanographenes with zigzag edges are predicted to manifest non-trivial π-magnetism resulting from the...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Materials Science and Engineering, ...