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在合成彭罗斯镶嵌中成像准周期电子态。

Imaging quasiperiodic electronic states in a synthetic Penrose tiling.

机构信息

Department of Physics, University of Notre Dame, Notre Dame, Indiana 46556, USA.

出版信息

Nat Commun. 2017 Jun 22;8:15961. doi: 10.1038/ncomms15961.

Abstract

Quasicrystals possess long-range order but lack the translational symmetry of crystalline solids. In solid state physics, periodicity is one of the fundamental properties that prescribes the electronic band structure in crystals. In the absence of periodicity and the presence of quasicrystalline order, the ways that electronic states change remain a mystery. Scanning tunnelling microscopy and atomic manipulation can be used to assemble a two-dimensional quasicrystalline structure mapped upon the Penrose tiling. Here, carbon monoxide molecules are arranged on the surface of Cu(111) one at a time to form the potential landscape that mimics the ionic potential of atoms in natural materials by constraining the electrons in the two-dimensional surface state of Cu(111). The real-space images reveal the presence of the quasiperiodic order in the electronic wave functions and the Fourier analysis of our results links the energy of the resonant states to the local vertex structure of the quasicrystal.

摘要

准晶具有长程有序,但缺乏晶体固体的平移对称性。在固态物理学中,周期性是规定晶体中电子能带结构的基本性质之一。在没有周期性和准晶有序的情况下,电子态的变化方式仍然是一个谜。扫描隧道显微镜和原子操纵可用于组装映射在彭罗斯镶嵌上的二维准晶结构。在这里,一氧化碳分子被逐个排列在 Cu(111)的表面上,形成一个势能景观,通过限制 Cu(111)二维表面态中的电子,来模拟天然材料中原子的离子势。实空间图像显示了电子波函数中的准周期性有序,我们的结果的傅里叶分析将共振态的能量与准晶的局部顶点结构联系起来。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5cec/5489715/69571ebf47c3/ncomms15961-f1.jpg

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