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The mechanism of caesium intercalation of graphene

机译:铯嵌入石墨烯的机理

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摘要

Properties of many layered materials, including copper- and iron-based superconductors, topological insulators, graphite and epitaxial graphene, can be manipulated by the inclusion of different atomic and molecular species between the layers via a process known as intercalation. For example, intercalation in graphite can lead to superconductivity and is crucial in the working cycle of modern batteries and supercapacitors. Intercalation involves complex diffusion processes along and across the layers; however, the microscopic mechanisms and dynamics of these processes are not well understood. Here we report on a novel mechanism for intercalation and entrapment of alkali atoms under epitaxial graphene. We find that the intercalation is adjusted by the van der Waals interaction, with the dynamics governed by defects anchored to graphene wrinkles. Our findings are relevant for the future design and application of graphene-based nano-structures. Similar mechanisms can also have a role for intercalation of layered materials.
机译:许多层状材料的特性,包括铜基和铁基超导体,拓扑绝缘体,石墨和外延石墨烯,都可以通过称为插层的方法在层之间包含不同的原子和分子种类来控制。例如,石墨中的嵌入可导致超导性,并且在现代电池和超级电容器的工作周期中至关重要。插层涉及沿层和跨层的复杂扩散过程。但是,这些过程的微观机制和动力学尚不十分清楚。在这里,我们报告了一种在外延石墨烯下嵌入和俘获碱原子的新机制。我们发现插层是通过范德华相互作用来调节的,其动力学由锚定在石墨烯皱纹上的缺陷所控制。我们的发现与石墨烯基纳米结构的未来设计和应用有关。类似的机制也可能对层状材料的插入起作用。

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