Attochemistry Regulation of Charge Migration
Abstract
Charge migration (CM) is a coherent attosecond process that involves the movement of localized holes across a molecule. To determine the relationship between a molecule's structure and the CM dynamics it exhibits, we perform systematic studies of para-functionalized bromobenzene molecules (X-CH-R) using real-time time-dependent density functional theory. We initiate valence-electron dynamics by emulating rapid strong-field ionization leading to a localized hole on the bromine atom. The resulting CM, which takes on the order of 1 fs, occurs via an X localized to CH delocalized to R localized mechanism. Interestingly, the hole contrast on the acceptor functional group increases with increasing electron donating strength. This trend is well-described by the Hammett sigma value of the group, which is a commonly used metric for quantifying the effect of functionalization on the chemical reactivity of benzene derivatives. These results suggest that simple attochemistry principles and a density-based picture can be used to predict and understand CM.
Keywords
Cite
@article{arxiv.2207.05892,
title = {Attochemistry Regulation of Charge Migration},
author = {Aderonke S. Folorunso and François Mauger and Kyle A. Hamer and Denawakage D Jayasinghe and Imam Wahyutama and Justin R. Ragains and Robert R. Jones and Louis F. DiMauro and Mette B. Gaarde and Kenneth J. Schafer and Kenneth Lopata},
journal= {arXiv preprint arXiv:2207.05892},
year = {2022}
}
Comments
5 pages, 3 figures