论文标题

扶手椅石墨烯纳米纤维中的耦合自旋状态,具有不对称的曲折边缘扩展

Coupled spin states in armchair graphene nanoribbons with asymmetric zigzag edge extensions

论文作者

Sun, Qiang, Yao, Xuelin, Groning, Oliver, Eimre, Kristjan, Pignedoli, Carlo A., Müllen, Klaus, Narita, Akimitsu, Fasel, Roman, Ruffieux, Pascal

论文摘要

基于碳的磁性结构有望比传统的磁性材料明显更长的相干时间,这对于Spintronic应用至关重要。实现碳基磁矩的一种优雅方法是设计石墨烯纳米结构的设计,其两种形成碳蜂窝状晶状体的sublattices的职业不平衡。根据Lieb定理的说法,这会诱导与Sublattice失衡成正比的局部磁矩。精确定位石墨烯纳米材料中的纳米结构的确切定位,因此提供了控制诱导局部磁矩之间相互作用的途径,并获得具有磁性非平凡地面状态的石墨烯纳米材料。在这里,我们表明,可以根据不对称的Zigzag边缘扩展来沿着大带间隙扶手椅纳米纤维沿大型带间隙扶手椅纳米纤维纳米结构进行合并,这是通过在岩石烯纳米龙的自下而上制造过程中特定设计的前体单体来实现的。扫描的隧道轨道谱图对分离的和电子脱钩的锯齿形边缘扩展揭示了根据理论预测的哈伯德式状态。对这种锯齿形边缘扩展对的研究揭示了磁相互作用的铁磁,抗铁磁或淬灭,这取决于不对称边缘扩展的相对对齐。此外,为沿纳米替比轴的锯齿形边缘延伸的周期性模式证明了铁磁自旋链。这项工作为具有复杂磁接地状态的石墨烯基旋转链的设计和制造开辟了一条途径。

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 zigzag edge extensions, which is achieved by incorporating specifically designed precursor monomers during the bottom-up fabrication of the graphene nanoribbons. Scanning tunneling spectroscopy of an isolated and electronically decoupled zigzag edge extension reveals Hubbard-split states in accordance with theoretical predictions. Investigation of pairs of such zigzag edge extensions reveals ferromagnetic, antiferromagnetic or quenching of the magnetic interactions depending on the relative alignment of the asymmetric edge extensions. Moreover, a ferromagnetic spin chain is demonstrated for a periodic pattern of zigzag edge extensions along the nanoribbon axis. This work opens a route towards the design and fabrication of graphene nanoribbon-based spin chains with complex magnetic ground states.

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