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Ca intercalated bilayer graphene as a thinnest limit of superconducting C6Ca

机译:Ca嵌入双层石墨烯作为超导C6Ca的最薄极限

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摘要

Success in isolating a 2D graphene sheet from bulky graphite has triggered intensive studies of its physical properties as well as its application in devices. Graphite intercalation compounds (GICs) have provided a platform of exotic quantum phenomena such as superconductivity, but it is unclear whether such intercalation is feasible in the thinnest 2D limit (i.e., bilayer graphene). Here we report a unique experimental realization of 2D GIC, by fabricating calcium-intercalated bilayer graphene C6CaC6 on silicon carbide. We have investigated the structure and electronic states by scanning tunneling microscopy and angle-resolved photoemission spectroscopy. We observed a free-electron–like interlayer band at the Brillouin-zone center, which is thought to be responsible for the superconductivity in 3D GICs, in addition to a large π* Fermi surface at the zone boundary. The present success in fabricating Ca-intercalated bilayer graphene would open a promising route to search for other 2D superconductors as well as to explore its application in devices.
机译:从庞大的石墨中分离出二维石墨烯片的成功引发了对其物理性质及其在装置中的应用的深入研究。石墨插层化合物(GIC)提供了一种奇特的量子现象(如超导性)的平台,但是目前尚不清楚这种插层是否在最薄的2D极限(即双层石墨烯)中可行。在这里,我们报告了通过在碳化硅上制造嵌入钙的双层石墨烯C6CaC6来实现2D GIC的独特实验实现。我们已经通过扫描隧道显微镜和角度分辨光发射光谱法研究了结构和电子态。我们在布里渊区的中心观察到了类似自由电子的夹层带,这被认为是3D GIC中超导性的原因,此外在区域边界处还有大的π*费米表面。目前制造Ca插入双层石墨烯的成功将为寻找其他2D超导体以及探索其在器件中的应用开辟一条有希望的途径。

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