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等离子体驱动的氢光解离的核-电子轨道量子动力学

Nuclear-Electronic Orbital Quantum Dynamics of Plasmon-Driven H Photodissociation.

作者信息

Li Tao E, Hammes-Schiffer Sharon

机构信息

Department of Chemistry, Yale University, New Haven, Connecticut 06520, United States.

出版信息

J Am Chem Soc. 2023 Aug 23;145(33):18210-18214. doi: 10.1021/jacs.3c04927. Epub 2023 Aug 9.

Abstract

Leveraging localized surface plasmon resonances of metal nanoparticles to trigger chemical reactions is a promising approach for heterogeneous catalysis. First-principles modeling of such processes is challenging due to the large number of electrons and electronic excited states as well as the significance of nuclear quantum effects when hydrogen is involved. Herein, the nonadiabatic nuclear-electronic quantum dynamics of plasmon-induced H photodissociation near an Al cluster is simulated with real-time nuclear-electronic orbital time-dependent density functional theory (RT-NEO-TDDFT). This approach propagates the nonequilibrium quantum dynamics of both electrons and protons. The plasmonic oscillations are shown to inject hot electrons into the antibonding orbital of H, thereby inducing H dissociation. The quantum mechanical treatment of the hydrogen nuclei leads to faster H photodissociation and slightly larger isotope effects. Analysis of the nonequilibrium electronic density suggests that these findings stem from enhanced excited-state electronic coupling between the plasmonic mode and the H antibonding orbital due to proton delocalization or zero-point energy effects. Given the low computational overhead for including nuclear quantum effects with the RT-NEO-TDDFT approach, this work paves the way for simulating nonadiabatic nuclear-electronic quantum dynamics in other plasmonic systems.

摘要

利用金属纳米颗粒的局域表面等离子体共振来触发化学反应是一种很有前景的多相催化方法。由于电子和电子激发态数量众多,以及涉及氢时核量子效应的重要性,对此类过程进行第一性原理建模具有挑战性。在此,利用实时核电子轨道含时密度泛函理论(RT-NEO-TDDFT)模拟了铝团簇附近等离子体诱导的氢光解离的非绝热核电子量子动力学。这种方法传播电子和质子的非平衡量子动力学。结果表明,等离子体振荡将热电子注入氢的反键轨道,从而诱导氢解离。对氢原子核的量子力学处理导致更快的氢光解离和稍大的同位素效应。对非平衡电子密度的分析表明,这些发现源于质子离域或零点能效应导致等离子体模式与氢反键轨道之间增强的激发态电子耦合。鉴于使用RT-NEO-TDDFT方法包含核量子效应的计算开销较低,这项工作为模拟其他等离子体系统中的非绝热核电子量子动力学铺平了道路。

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