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通过扫描隧道显微镜和理论分析揭示扭曲双层石墨烯中沃夫(van Hove)奇点的内在和稳健特性。

Unraveling the intrinsic and robust nature of van Hove singularities in twisted bilayer graphene by scanning tunneling microscopy and theoretical analysis.

机构信息

Departamento Física de la Materia Condensada, Universidad Autónoma de Madrid, E-28049 Madrid, Spain.

出版信息

Phys Rev Lett. 2012 Nov 9;109(19):196802. doi: 10.1103/PhysRevLett.109.196802. Epub 2012 Nov 8.

Abstract

Extensive scanning tunneling microscopy and spectroscopy experiments complemented by first-principles and parametrized tight binding calculations provide a clear answer to the existence, origin, and robustness of van Hove singularities (vHs) in twisted graphene layers. Our results are conclusive: vHs due to interlayer coupling are ubiquitously present in a broad range (from 1° to 10°) of rotation angles in our graphene on 6H-SiC(000-1) samples. From the variation of the energy separation of the vHs with the rotation angle we are able to recover the Fermi velocity of a graphene monolayer as well as the strength of the interlayer interaction. The robustness of the vHs is assessed both by experiments, which show that they survive in the presence of a third graphene layer, and by calculations, which test the role of the periodic modulation and absolute value of the interlayer distance. Finally, we clarify the role of the layer topographic corrugation and of electronic effects in the apparent moiré contrast measured on the STM images.

摘要

广泛的扫描隧道显微镜和光谱实验,辅以第一性原理和参数化紧束缚计算,为扭转石墨烯层中存在、起源和鲁棒性的范霍夫奇点(vHs)提供了明确的答案。我们的结果是结论性的:由于层间耦合而产生的 vHs 在我们在 6H-SiC(000-1) 样品上的石墨烯中广泛存在于宽范围(从 1°到 10°)的旋转角度内。从 vHs 的能量分离随旋转角度的变化,我们能够恢复出单层石墨烯的费米速度以及层间相互作用的强度。通过实验评估了 vHs 的鲁棒性,实验表明它们在存在第三层石墨烯的情况下仍然存在,并且通过计算测试了层间距离的周期性调制和绝对值的作用。最后,我们澄清了层形貌起伏和电子效应在 STM 图像上测量的明显莫尔对比度中的作用。

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