Chimie ParisTech, PSL Research University, CNRS, Institute of Chemistry for Life and Health Sciences (i-CLeHS), FRE 2027, F-75005 Paris, France.
Laboratoire de Chimie et Physique Quantiques, IRSAMC, CNRS et Université Toulouse 3, 118 route de Narbonne, 31062 Toulouse, France.
J Comput Chem. 2019 May 30;40(14):1420-1428. doi: 10.1002/jcc.25800. Epub 2019 Feb 23.
The ability to locate minima on electronic excited states (ESs) potential energy surfaces both in the case of bright and dark states is crucial for a full understanding of photochemical reactions. This task has become a standard practice for small- to medium-sized organic chromophores thanks to the constant developments in the field of computational photochemistry. However, this remains a very challenging effort when it comes to the optimization of ESs of transition metal complexes (TMCs), not only due to the presence of several electronic ESs close in energy, but also due to the complex nature of the ESs involved. In this article, we present a simple yet powerful method to follow an ES of interest during a structural optimization in the case of TMCs, based on the use of a compact hole-particle representation of the electronic transition, namely the natural transition orbitals (NTOs). State tracking using NTOs is unambiguously accomplished by computing the mono-electronic wave function overlap between consecutive steps of the optimization. Here, we demonstrate that this simple but robust procedure works not only in the case of the cytosine but also in the case of the ES optimization of a ruthenium nitrosyl complex which is very problematic with standard approaches. © 2019 The Authors. Journal of Computational Chemistry published by Wiley Periodicals, Inc.
定位电子激发态(ES)势能面上的极小值的能力,无论是在亮态还是暗态的情况下,对于全面理解光化学反应都至关重要。由于计算光化学领域的不断发展,这一任务已成为中小有机发色团的标准实践。然而,对于过渡金属配合物(TMC)ES 的优化,这仍然是一项极具挑战性的工作,这不仅是因为存在几个能量上接近的电子 ES,还因为所涉及的 ES 具有复杂的性质。在本文中,我们提出了一种简单而强大的方法,即在 TMC 结构优化过程中跟踪感兴趣的 ES,基于电子跃迁的紧凑空穴-粒子表示,即自然跃迁轨道(NTOs)。通过计算优化过程中连续步骤之间的单电子波函数重叠,使用 NTO 进行状态跟踪可以明确完成。在这里,我们证明了这种简单但稳健的方法不仅适用于胞嘧啶的情况,也适用于钌亚硝酰配合物 ES 优化的情况,而标准方法在这种情况下非常复杂。©2019 作者。约翰威立父子公司出版的《计算化学杂志》