首页> 外文期刊>Journal of chemical theory and computation: JCTC >Ultrafast Dynamics of Electronic Resonances in Molecules Adsorbed on Metal Surfaces: A Wave Packet Propagation Approach
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Ultrafast Dynamics of Electronic Resonances in Molecules Adsorbed on Metal Surfaces: A Wave Packet Propagation Approach

机译:金属表面上吸附的分子中电子共振的超快动态:波包传播方法

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We present a wave packet propagation-based method to study the electron dynamics in molecular species in the gas phase and adsorbed on metal surfaces. It is a very general method that can be employed to any system where the electron dynamics is dominated by an active electron and the coupling between the discrete and continuum electronic states is of importance. As an example, one can consider resonant molecule–surface electron transfer or molecular photoionization. Our approach is based on a computational strategy allowing incorporating ab initio inputs from quantum chemistry methods, such as density functional theory, Hartree–Fock, and coupled cluster. Thus, the electronic structure of the molecule is fully taken into account. The electron wave function is represented on a three-dimensional grid in spatial coordinates, and its temporal evolution is obtained from the solution of the time-dependent Schr?dinger equation. We illustrate our method with an example of the electron dynamics of anionic states localized on organic molecules adsorbed on metal surfaces. In particular, we study resonant charge transfer from the π* orbitals of three vinyl derivatives (acrylamide, acrylonitrile, and acrolein) adsorbed on a Cu(100) surface. Electron transfer between these lowest unoccupied molecular orbitals and the metal surface is extremely fast, leading to a decay of the population of the molecular anion on the femtosecond timescale. We detail how to analyze the time-dependent electronic wave function in order to obtain the relevant information on the system: the energies and lifetimes of the molecule-localized quasistationary states, their resonant wavefunctions, and the population decay channels. In particular, we demonstrate the effect of the electronic structure of the substrate on the energy and momentum distribution of the hot electrons injected into the metal by the decaying molecular resonance.
机译:我们提出了一种基于波包传播的方法来研究气相和吸附在金属表面的分子物种中的电子动力学。这是一种非常普遍的方法,适用于任何电子动力学由活跃电子控制的系统,并且离散电子态和连续电子态之间的耦合非常重要。作为一个例子,可以考虑共振分子-表面电子转移或分子光电离。我们的方法基于一种计算策略,允许结合量子化学方法的从头算输入,如密度泛函理论、Hartree–Fock和耦合团簇。因此,分子的电子结构得到了充分考虑。电子波函数在空间坐标系的三维网格上表示,其时间演化由含时Schr?丁格方程。我们用吸附在金属表面的有机分子上的阴离子态的电子动力学的例子来说明我们的方法。特别是,我们研究了吸附在Cu(100)表面的三种乙烯基衍生物(丙烯酰胺、丙烯腈和丙烯醛)的π*轨道的共振电荷转移。在这些最低的未被占据的分子轨道和金属表面之间的电子转移非常快,导致分子负离子的数量在飞秒时间尺度上衰减。我们详细介绍了如何分析随时间变化的电子波函数,以获得系统的相关信息:分子局域准静态态的能量和寿命,它们的共振波函数,以及布居数衰变通道。特别是,我们证明了基底的电子结构对衰变分子共振注入金属的热电子的能量和动量分布的影响。

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