Crisci Luigi, Coppola Federico, Petrone Alessio, Rega Nadia
Department of Chemical Sciences, University of Napoli Federico II, Complesso Universitario di M.S. Angelo, Naples, Italy.
Scuola Normale Superiore di Pisa, Pisa, Italy.
J Comput Chem. 2024 Feb 5;45(4):210-221. doi: 10.1002/jcc.27231. Epub 2023 Sep 14.
Photo-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.
光诱导电荷转移(CT)态在许多技术和生物过程中起着关键作用。深入了解此类状态对于模拟电荷迁移动力学至关重要。实时含时密度泛函理论(RT-TD-DFT)电子动力学模拟用于明确观察光激发后电子密度随时间的演化。鉴于不对称取代的茚并四苯分子在有机光伏材料中作为n型半导体的潜在应用,本文对其进行了研究。通过基于线性响应(LR-)TD-DFT和RT-TD-DFT的方法,从整体电子能量间距和由此产生的超快CT动力学方面分析了具有不同给电子特性的取代基的影响。这里采用的计算技术相结合,提供了直接获取电子密度随时间的重组及其在分子轨道占据时间演化方面的空间和合理表示的途径。这些结果可用于设计特殊的定向电荷动力学,这在光活性材料用于光捕获应用时至关重要。