Tuning ultrafast time‐evolution of photo‐induced charge‐transfer states: A real‐time electronic dynamics study in substituted indenotetracene derivatives

Author:

Crisci Luigi12ORCID,Coppola Federico3ORCID,Petrone Alessio134ORCID,Rega Nadia134ORCID

Affiliation:

1. Department of Chemical Sciences University of Napoli Federico II, Complesso Universitario di M.S. Angelo Naples Italy

2. Scuola Normale Superiore di Pisa Pisa Italy

3. Scuola Superiore Meridionale Naples Italy

4. Istituto Nazionale Di Fisica Nucleare, Sezione di Napoli, Complesso Universitario di M.S. Angelo ed. 6 Naples Italy

Abstract

AbstractPhoto‐induced charge transfer (CT) states are pivotal in many technological and biological processes. A deeper knowledge of such states is mandatory for modeling the charge migration dynamics. Real‐time time‐dependent density functional theory (RT‐TD‐DFT) electronic dynamics simulations are employed to explicitly observe the electronic density time‐evolution upon photo‐excitation. Asymmetrically substituted indenotetracene molecules, given their potential application as n‐type semiconductors in organic photovoltaic materials, are here investigated. Effects of substituents with different electron‐donating characters are analyzed in terms of the overall electronic energy spacing and resulting ultrafast CT dynamics through linear response (LR‐)TD‐DFT and RT‐TD‐DFT based approaches. The combination of the computational techniques here employed provided direct access to the electronic density reorganization in time and to its spatial and rational representation in terms of molecular orbital occupation time evolution. Such results can be exploited to design peculiar directional charge dynamics, crucial when photoactive materials are used for light‐harvesting applications.

Funder

Gaussian

Ministry for Universities and Research

Publisher

Wiley

Subject

Computational Mathematics,General Chemistry

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