Time-resolved vibronic spectra with nuclear–electronic orbital time-dependent configuration interaction

S Scott M. Garner (Department of Chemistry, Princeton University 1 , Princeton, New Jersey 08544,) S Shiv Upadhyay (Department of Chemistry) X Xiaosong Li (Department of Chemistry) S Sharon Hammes-Schiffer (Department of Chemistry)

Abstract

Time-resolved spectroscopy is an important tool for probing photochemically induced nonequilibrium dynamics and energy transfer. Herein, a method is developed for the ab initio simulation of vibronic spectra and dynamical processes. This framework utilizes the recently developed nuclear–electronic orbital time-dependent configuration interaction (NEO-TDCI) approach, which treats all electrons and specified nuclei quantum mechanically on the same footing. A strategy is presented for calculating time-resolved vibrational and electronic absorption spectra from any initial condition. Although this strategy is general for any TDCI implementation, utilizing the NEO framework allows for the explicit inclusion of quantized nuclei, as illustrated through the calculation of vibrationally hot spectra. Time-resolved spectra produced by either vibrational or electronic Rabi oscillations capture ground-state absorption, stimulated emission, and excited-state absorption between vibronic states. This methodology provides the foundation for fully ab initio simulations of multidimensional spectroscopic experiments.

Article Details

Volume / Issue Vol. 162, Issue 4
Published January 28, 2025
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (4)

S

Scott M. Garner

Department of Chemistry, Princeton University 1 , Princeton, New Jersey 08544,

S

Shiv Upadhyay

Department of Chemistry

X

Xiaosong Li

Department of Chemistry

S

Sharon Hammes-Schiffer

Department of Chemistry