Tracking Excited States in Wave Function Optimization Using Density Matrices and Variational Principles.

J Chem Theory Comput

Department of Chemistry , University of California, Berkeley , California 94720 , United States.

Published: September 2019

AI Article Synopsis

  • The study introduces a new method to find energy points for individual excited states within complete active space self-consistent field theory, which effectively deals with issues like root flipping and near-degeneracies.
  • By integrating the maximum overlap method with recent advancements in excited-state variational principles, the approach successfully tracks specific excited states during the optimization process.
  • The results demonstrate that this method is superior to traditional techniques for state-specific optimization, improving performance in vertical excitation energies and minimizing discontinuities in potential energy surfaces in various computational scenarios.

Article Abstract

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.

Download full-text PDF

Source
http://dx.doi.org/10.1021/acs.jctc.9b00351DOI Listing

Publication Analysis

Top Keywords

active space
12
excited states
8
variational principles
8
individual excited
8
complete active
8
root flipping
8
flipping near-degeneracies
8
maximum overlap
8
overlap method
8
state-specific optimization
8

Similar Publications

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!