Strain-activated edge reconstruction of graphene nanoribbons

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Abstract

The edge structure and width of graphene nanoribbons (GNRs) are crucial factors for the electronic properties. A combination of experiment and first-principles calculations allows us to determine the mechanism of the hexagon-hexagon to pentagon-heptagon transformation. GNRs thinner than 2 nm have been fabricated by bombardment of graphene with high-energetic Au clusters. The edges of the GNRs are modified in situ by electron irradiation. Tensile strain along the edge decreases the transformation energy barrier. Antiferromagnetism and a direct band gap are found for a zigzag GNR, while a fully reconstructed GNR shows an indirect band gap. A GNR reconstructed on only one edge exhibits ferromagnetism. We propose that strain is an effective method to tune the edge and, therefore, the electronic structure of thin GNRs for graphene-based electronics. © 2012 American Physical Society.

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Cheng, Y. C., Wang, H. T., Zhu, Z. Y., Zhu, Y. H., Han, Y., Zhang, X. X., & Schwingenschlögl, U. (2012). Strain-activated edge reconstruction of graphene nanoribbons. Physical Review B - Condensed Matter and Materials Physics, 85(7). https://doi.org/10.1103/PhysRevB.85.073406

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