Department of Chemistry , University of California , Berkeley , California 94720 , United States.
Ho Chi Minh City Institute of Physics , VAST , Ho Chi Minh City 700000 , Vietnam.
J Chem Theory Comput. 2019 Sep 10;15(9):4790-4803. doi: 10.1021/acs.jctc.9b00351. Epub 2019 Aug 23.
We present a method for finding individual excited states' energy stationary points in complete active space self-consistent field theory that is compatible with standard optimization methods and highly effective at overcoming difficulties due to root flipping and near-degeneracies. Inspired by both the maximum overlap method and recent progress in excited-state variational principles, our approach combines these ideas in order to track individual excited states throughout the orbital optimization process. In a series of tests involving root flipping, near-degeneracies, charge transfers, and double excitations, we show that this approach is more effective for state-specific optimization than either the naive selection of roots on the basis of energy ordering or a more direct generalization of the maximum overlap method. We provide evidence that this state-specific approach improves the performance of complete active space perturbation theory for vertical excitation energies. Furthermore, we find that the state-specific optimization can help avoid state-averaging-induced discontinuities on potential energy surfaces. With a simple implementation, a low cost, and compatibility with large active space methods, the approach is designed to be useful in a wide range of excited-state investigations.
我们提出了一种在完全活性空间自洽场理论中寻找单个激发态能量稳定点的方法,该方法与标准优化方法兼容,并且非常有效地克服了由于根翻转和近简并引起的困难。受最大重叠方法和最近在激发态变分原理方面的进展的启发,我们的方法结合了这些思想,以便在轨道优化过程中跟踪单个激发态。在涉及根翻转、近简并、电荷转移和双激发的一系列测试中,我们表明,与基于能量排序的简单选择根或最大重叠方法的更直接推广相比,这种方法对于特定状态的优化更有效。我们提供的证据表明,这种特定于状态的方法可以提高垂直激发能的完全活性空间微扰理论的性能。此外,我们发现,特定于状态的优化可以帮助避免势能面上的状态平均诱导的不连续性。该方法具有简单的实现、低开销以及与大活性空间方法的兼容性,旨在广泛应用于各种激发态研究中。