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Resonant Raman spectroscopy of twisted multilayer graphene

机译:扭曲多层石墨烯的共振拉曼光谱

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Graphene and other two-dimensional crystals can be combined to form various hybrids and heterostructures, creating materials on demand with properties determined by the interlayer interaction. This is the case even for a single material, where multilayer stacks with different relative orientation have different optical and electronic properties. Probing and understanding the interface coupling is thus of primary importance for fundamental science and applications. Here we study twisted multilayer graphene flakes with multi-wavelength Raman spectroscopy. We find a significant intensity enhancement of the interlayer coupling modes (C peaks) due to resonance with new optically allowed electronic transitions, determined by the relative orientation of the layers. The interlayer coupling results in a Davydov splitting of the C peak in systems consisting of two equivalent graphene multilayers. This allows us to directly quantify the interlayer interaction, which is much smaller compared with Bernal-stacked interfaces. This paves the way to the use of Raman spectroscopy to uncover the interface coupling of two-dimensional hybrids and heterostructures.
机译:可以将石墨烯和其他二维晶体结合起来以形成各种杂化体和异质结构,从而按需创建具有由层间相互作用确定的特性的材料。即使对于单一材料也是如此,其中具有不同相对取向的多层堆叠具有不同的光学和电子特性。因此,探究和理解接口耦合对于基础科学和应用至关重要。在这里,我们使用多波长拉曼光谱研究扭曲的多层石墨烯薄片。我们发现由于与新的光学允许的电子跃迁的共振而引起的层间耦合模式(C峰)的强度显着增强,这取决于各层的相对取向。层间耦合导致在由两个等效石墨烯多层组成的系统中C峰的达维多夫分裂。这使我们可以直接量化层间交互作用,与Bernal堆叠的接口相比,该交互作用要小得多。这为使用拉曼光谱法揭示二维杂化和异质结构的界面耦合铺平了道路。

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