论文标题

Kmap.py:光发射断层扫描中的模拟和数据分析的Python程序

kMap.py: A Python program for simulation and data analysis in photoemission tomography

论文作者

Brandstetter, Dominik, Yang, Xiaosheng, Lüftner, Daniel, Tautz, F. Stefan, Puschnig, Peter

论文摘要

对于在金属表面上吸附的有机分子作为良好导向的超薄膜,角度分辨光发射光谱已演变为一种称为光发射断层扫描(PT)的技术。通过将光电电子的最终状态近似为游离电子,PT使用光电流的角度依赖性,所谓的动量图或k-Map,并将其解释为初始状态的分子轨道的傅立叶变换,从而获得了对有机/金属界面的几何和电子结构的见解。 在此贡献中,我们提出了kmap.py,这是一个Python程序,它可以通过基于PYQT的图形用户界面来模拟用户模拟分子轨道的光发射动量图,并在模拟和实验之间进行一对一的比较。基于最终状态的平面波近似,模拟动量图是根据真实空间分子轨道分布的快速傅立叶变换来计算的,该轨道分布的快速傅立叶变换被用作程序输入并取自密度功能计算。该程序允许用户改变许多模拟参数,例如最终状态动能,分子方向或入射光场的极化状态。此外,还可以将实验光发射数据加载到程序中,以实现直接视觉比较以及自动优化程序,以确定分子轨道分子的结构参数或分子轨道贡献的重量。随着越来越多的实验组采用光发射断层扫描来研究吸附层,我们希望Kmap.py可以作为理想的分析软件,以进一步扩展PT的适用性。

For organic molecules adsorbed as well-oriented ultra-thin films on metallic surfaces, angle-resolved photoemission spectroscopy has evolved into a technique called photoemission tomography (PT). By approximating the final state of the photoemitted electron as a free electron, PT uses the angular dependence of the photocurrent, a so-called momentum map or k-map, and interprets it as the Fourier transform of the initial state's molecular orbital, thereby gains insights into the geometric and electronic structure of organic/metal interfaces. In this contribution, we present kMap.py which is a Python program that enables the user, via a PyQt-based graphical user interface, to simulate photoemission momentum maps of molecular orbitals and to perform a one-to-one comparison between simulation and experiment. Based on the plane wave approximation for the final state, simulated momentum maps are computed numerically from a fast Fourier transform of real space molecular orbital distributions, which are used as program input and taken from density functional calculations. The program allows the user to vary a number of simulation parameters such as the final state kinetic energy, the molecular orientation or the polarization state of the incident light field. Moreover, also experimental photoemission data can be loaded into the program enabling a direct visual comparison as well as an automatic optimization procedure to determine structural parameters of the molecules or weights of molecular orbitals contributions. With an increasing number of experimental groups employing photoemission tomography to study adsorbate layers, we expect kMap.py to serve as an ideal analysis software to further extend the applicability of PT.

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