On-surface synthesis of graphene nanoribbons with zigzag edge topology

之字形的 石墨烯纳米带 石墨烯 自旋电子学 材料科学 凝聚态物理 自旋(空气动力学) 纳米技术 拓扑(电路) 铁磁性 物理 几何学 数学 热力学 组合数学
作者
Pascal Ruffieux,Shiyong Wang,Bo Yang,Carlos Sánchez‐Sánchez,Jia Liu,Thomas Dienel,Leopold Talirz,Prashant P. Shinde,Carlo A. Pignedoli,Daniele Passerone,Tim Dumslaff,Xinliang Feng,Kläus Müllen,Román Fasel
出处
期刊:Nature [Springer Nature]
卷期号:531 (7595): 489-492 被引量:1303
标识
DOI:10.1038/nature17151
摘要

Graphene-based nanostructures exhibit a vast range of exciting electronic properties that are absent in extended graphene. For example, quantum confinement in carbon nanotubes and armchair graphene nanoribbons (AGNRs) leads to the opening of substantial electronic band gaps that are directly linked to their structural boundary conditions. Even more intriguing are nanostructures with zigzag edges, which are expected to host spin-polarized electronic edge states and can thus serve as key elements for graphene-based spintronics. The most prominent example is zigzag graphene nanoribbons (ZGNRs) for which the edge states are predicted to couple ferromagnetically along the edge and antiferromagnetically between them. So far, a direct observation of the spin-polarized edge states for specifically designed and controlled zigzag edge topologies has not been achieved. This is mainly due to the limited precision of current top-down approaches, which results in poorly defined edge structures. Bottom-up fabrication approaches, on the other hand, were so far only successfully applied to the growth of AGNRs and related structures. Here, we describe the successful bottom-up synthesis of ZGNRs, which are fabricated by the surface-assisted colligation and cyclodehydrogenation of specifically designed precursor monomers including carbon groups that yield atomically precise zigzag edges. Using scanning tunnelling spectroscopy we prove the existence of edge-localized states with large energy splittings. We expect that the availability of ZGNRs will finally allow the characterization of their predicted spin-related properties such as spin confinement and filtering, and ultimately add the spin degree of freedom to graphene-based circuitry.
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