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金(111)表面上超薄铂膜中表面态和量子阱态的形成。

Formation of Surface and Quantum-Well States in Ultra Thin Pt Films on the Au(111) Surface.

作者信息

Silkin Igor V, Koroteev Yury M, Echenique Pedro M, Chulkov Evgueni V

机构信息

Department of Physics, Tomsk State University, 634050 Tomsk, Russia.

Institute of Strength Physics and Materials Science, Siberian Branch, Russian Academy of Sciences, 634050 Tomsk, Russia.

出版信息

Materials (Basel). 2017 Dec 9;10(12):1409. doi: 10.3390/ma10121409.

Abstract

The electronic structure of the Pt/Au(111) heterostructures with a number of Pt monolayers ranging from one to three is studied in the density-functional-theory framework. The calculations demonstrate that the deposition of the Pt atomic thin films on gold substrate results in strong modifications of the electronic structure at the surface. In particular, the Au(111) --type Shockley surface state becomes completely unoccupied at deposition of any number of Pt monolayers. The Pt adlayer generates numerous quantum-well states in various energy gaps of Au(111) with strong spatial confinement at the surface. As a result, strong enhancement in the local density of state at the surface Pt atomic layer in comparison with clean Pt surface is obtained. The excess in the density of states has maximal magnitude in the case of one monolayer Pt adlayer and gradually reduces with increasing number of Pt atomic layers. The spin-orbit coupling produces strong modification of the energy dispersion of the electronic states generated by the Pt adlayer and gives rise to certain quantum states with a characteristic Dirac-cone shape.

摘要

在密度泛函理论框架下,研究了具有1到3个铂单层的Pt/Au(111)异质结构的电子结构。计算表明,在金衬底上沉积铂原子薄膜会导致表面电子结构的强烈改变。特别是,在沉积任何数量的铂单层时,Au(111)型肖克利表面态会完全变为未占据状态。铂吸附层在Au(111)的各种能隙中产生大量量子阱态,且在表面具有很强的空间限制。结果,与清洁的铂表面相比,表面铂原子层的局部态密度得到了显著增强。在一个铂单层吸附层的情况下,态密度的过剩具有最大幅度,并随着铂原子层数的增加而逐渐减小。自旋轨道耦合对铂吸附层产生的电子态的能量色散产生了强烈的改变,并产生了具有特征狄拉克锥形状的某些量子态。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ca67/5744344/03a43490f2f2/materials-10-01409-g001.jpg

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