论文标题

等离子体介导的化学转化的分子动力学研究

Molecular Dynamics Study of Plasmon-Mediated Chemical Transformations

论文作者

Wu, Xiaoyan, van der Heide, Tammo, Frauenheim, Thomas, Tretiak, Sergei, Yam, ChiYung, Zhang, Yu

论文摘要

在等离子体介导的金属表面上的吸附物的异质催化具有潜在的光电转化效率和可控反应的选择性。动态反应过程的理论建模提供了深入的分析,可补充实验研究。特别是对于等离子体介导的化学转化,光吸收,光电转换,电子 - 电子散射和电子 - 音波偶联的同时在不同的时间尺度上同时发生,从而使划定不同因素的复杂相互作用非常具有挑战性。在这项工作中,使用轨迹表面跳跃非绝热分子动力学方法来研究Au $ _ {20} $ - CO系统中等离子体激发的动力学,包括热载体的产生,等离子体能量放松以及由电子振动耦合引起的CO激活。电子属性表明,当au $ _ {20} $ - CO感到兴奋时,部分充电转移是从au $ _ {20} $转移到Co。另一方面,动态模拟表明,等离子体mon的激发后产生的热载体在Au $ _ {20}}}}} $ _ {20}} $ _ {20}} $ _ {20}}和CO的均值中均为c-e-ostiaib and cartiab and cartib and sative and cartive and artiab ind sipt ociving sipt of-cripting sipteu sipt and artiab。基于这些数量的合奏平均值,获得了等离子体介导的转换的效率($ \ sim $ 40 \%)。我们的模拟从非绝热模拟的角度从等离子体介导的化学转化提供了重要的动力学和原子观念。

Heterogeneous catalysis of adsorbates on metallic surfaces mediated by plasmon has potential high photoelectric conversion efficiency and controllable reaction selectivity. Theoretical modeling of dynamical reaction processes provides in-depth analyses complementing experimental investigations. Especially for plasmon-mediated chemical transformations, light absorption, photoelectric conversion, electron-electron scattering, and electron-phonon coupling occur simultaneously at different timescales, rendering it very challenging to delineate the complex interplay of different factors. In this work, a trajectory surface hopping non-adiabatic molecular dynamics method is used to investigate the dynamics of plasmon excitation in an Au$_{20}$-CO system, including hot carrier generation, plasmon energy relaxation, and CO activation induced by electron-vibration coupling. The electronic properties indicate that when Au$_{20}$-CO is excited, a partial charge transfer takes place from Au$_{20}$ to CO. On the other hand, the dynamical simulations show that hot carriers generated after plasmon excitation transfer back and forth between Au$_{20}$ and CO. Meanwhile, the C-O stretching mode is activated due to the non-adiabatic couplings. The efficiency of plasmon-mediated transformation ($\sim$40\%) is obtained based on the ensemble average of these quantities. Our simulations provide important dynamical and atomistic insights into plasmon-mediated chemical transformation from the perspective of non-adiabatic simulations.

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