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Quantifying electronic band interactions in van der Waals materials using angle-resolved reflected-electron spectroscopy

机译:使用角度分辨反射电子光谱法量化范德华材料中的电子带相互作用

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摘要

High electron mobility is one of graphene's key properties, exploited for applications and fundamental research alike. Highest mobility values are found in heterostructures of graphene and hexagonal boron nitride, which consequently are widely used. However, surprisingly little is known about the interaction between the electronic states of these layered systems. Rather pragmatically, it is assumed that these do not couple significantly. Here we study the unoccupied band structure of graphite, boron nitride and their heterostructures using angle-resolved reflected-electron spectroscopy. We demonstrate that graphene and boron nitride bands do not interact over a wide energy range, despite their very similar dispersions. The method we use can be generally applied to study interactions in van der Waals systems, that is, artificial stacks of layered materials. With this we can quantitatively understand the ‘chemistry of layers' by which novel materials are created via electronic coupling between the layers they are composed of.
机译:高电子迁移率是石墨烯的关键特性之一,已被广泛用于应用和基础研究。在石墨烯和六方氮化硼的异质结构中发现了最高的迁移率值,因此被广泛使用。然而,令人惊讶的是,对于这些分层系统的电子状态之间的相互作用知之甚少。实际上,假设这些耦合不明显。在这里,我们使用角分辨反射电子光谱研究石墨,氮化硼的未占据的能带结构及其异质结构。我们证明,尽管石墨烯和氮化硼的色散非常相似,但它们在宽的能量范围内不会相互作用。我们使用的方法通常可用于研究范德华系统中的相互作用,即层状材料的人工堆叠。这样,我们就可以定量地理解“层的化学性质”,即通过其组成的层之间的电子耦合来创建新颖的材料。

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