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Anomalous Kondo resonance mediated by semiconducting graphene nanoribbons in a molecular heterostructure

机译:半导体异质结构中半导体石墨烯纳米带介导的异常近藤共振

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摘要

Kondo resonances in heterostructures formed by magnetic molecules on a metal require free host electrons to interact with the molecular spin and create delicate many-body states. Unlike graphene, semiconducting graphene nanoribbons do not have free electrons due to their large bandgaps, and thus they should electronically decouple molecules from the metal substrate. Here, we observe unusually well-defined Kondo resonances in magnetic molecules separated from a gold surface by graphene nanoribbons in vertically stacked heterostructures. Surprisingly, the strengths of Kondo resonances for the molecules on graphene nanoribbons appear nearly identical to those directly adsorbed on the top, bridge and threefold hollow sites of Au(111). This unexpectedly strong spin-coupling effect is further confirmed by density functional calculations that reveal no spin–electron interactions at this molecule-gold substrate separation if the graphene nanoribbons are absent. Our findings suggest graphene nanoribbons mediate effective spin coupling, opening a way for potential applications in spintronics.
机译:由金属上的磁性分子形成的异质结构中的近藤共振需要自由的主电子与分子自旋相互作用并产生微妙的多体态。与石墨烯不同,半导体石墨烯纳米带由于其大的带隙而没有自由电子,因此它们应该使分子与金属基板发生电子脱耦。在这里,我们观察到在垂直堆叠的异质结构中被石墨烯纳米带与金表面​​隔开的磁性分子中,异常清晰的近藤共振。出人意料的是,石墨烯纳米带上分子的近藤共振强度似乎与直接吸附在Au(111)顶部,桥和三重空心位点上的那些几乎相同。密度泛函计算进一步证实了这种出乎意料的强自旋耦合效应,如果不存在石墨烯纳米带,则该分子与金底物的分离不会显示自旋电子相互作用。我们的发现表明,石墨烯纳米带介导了有效的自旋耦合,为自旋电子学中的潜在应用开辟了道路。

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