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计算具有多个态的大型金属簇上分子的电子激发态动力学的方法:确保快速重叠计算和可靠的相位选择。

Methods to Calculate Electronic Excited-State Dynamics for Molecules on Large Metal Clusters with Many States: Ensuring Fast Overlap Calculations and a Robust Choice of Phase.

作者信息

Chen Hsing-Ta, Chen Junhan, Cofer-Shabica D Vale, Zhou Zeyu, Athavale Vishikh, Medders Gregory, Menger Maximilian F S J, Subotnik Joseph E, Jin Zuxin

机构信息

Department of Chemistry, University of Pennsylvania, 231 South 34th Street, Philadelphia, Pennsylvania 19104, United States.

Zernike Institute for Advanced Materials, Faculty of Science and Engineering, University of Groningen, Nijenborgh 4, Groningen 9747AG, The Netherlands.

出版信息

J Chem Theory Comput. 2022 Jun 14;18(6):3296-3307. doi: 10.1021/acs.jctc.1c01304. Epub 2022 May 24.

Abstract

We present an efficient set of methods for propagating excited-state dynamics involving a large number of configuration interaction singles (CIS) or Tamm-Dancoff approximation (TDA) single-reference excited states. Specifically, (i) following Head-Gordon et al., we implement an exact evaluation of the overlap of singly-excited CIS/TDA electronic states at different nuclear geometries using a biorthogonal basis and (ii) we employ a unified protocol for choosing the correct phase for each adiabat at each geometry. For many-electron systems, the combination of these techniques significantly reduces the computational cost of integrating the electronic Schrodinger equation and imposes minimal overhead on top of the underlying electronic structure calculation. As a demonstration, we calculate the electronic excited-state dynamics for a hydrogen molecule scattering off a silver metal cluster, focusing on high-lying excited states, where many electrons can be excited collectively and crossings are plentiful. Interestingly, we find that the high-lying, plasmon-like collective excitation spectrum changes with nuclear dynamics, highlighting the need to simulate non-adiabatic nuclear dynamics and plasmonic excitations simultaneously. In the future, the combination of methods presented here should help theorists build a mechanistic understanding of plasmon-assisted charge transfer and excitation energy relaxation processes near a nanoparticle or metal surface.

摘要

我们提出了一套高效的方法,用于传播涉及大量组态相互作用单重态(CIS)或塔姆-丹科夫近似(TDA)单参考激发态的激发态动力学。具体而言,(i)遵循黑德-戈登等人的方法,我们使用双正交基精确评估不同核几何构型下单重激发CIS/TDA电子态的重叠,并且(ii)我们采用统一的协议为每个几何构型下的每个绝热态选择正确的相位。对于多电子系统,这些技术的结合显著降低了积分电子薛定谔方程的计算成本,并且在基础电子结构计算之上增加的开销最小。作为一个演示,我们计算了氢分子从银金属团簇散射时的电子激发态动力学,重点关注高激发态,在那里许多电子可以集体激发且交叉点众多。有趣的是,我们发现高激发的、类似等离子体的集体激发光谱随核动力学而变化,这突出了同时模拟非绝热核动力学和等离子体激发的必要性。未来,这里提出的方法组合应有助于理论学家建立对纳米粒子或金属表面附近等离子体辅助电荷转移和激发能量弛豫过程的机理理解。

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