Department of Chemistry, Southern Methodist University, Dallas, Texas 75275, United States.
J Phys Chem A. 2023 Jun 1;127(21):4643-4649. doi: 10.1021/acs.jpca.3c01409. Epub 2023 May 20.
Dual fluorescence in 4-(dimethylamino)benzonitrile (DMABN) and its derivatives in polar solvents has been studied extensively for the past several decades. An intramolecular charge transfer (ICT) minimum on the excited state potential energy surface, in addition to the localized low-energy (LE) minimum, has been proposed as a mechanism for this dual fluorescence, with large geometric relaxation and molecular orbital reorganization a key feature of the ICT pathway. Herein, we have used both equation-of-motion coupled-cluster with single and double excitations (EOM-CCSD) and time-dependent density functional (TDDFT) methods to investigate the landscape of excited state potential energy surfaces across a number of geometric conformations proposed as ICT structures. In order to correlate these geometries and valence excited states in terms of potential experimental observables, we have calculated the nitrogen K-edge ground and excited state absorption spectra for each of the predicted "signpost" structures and identified several key spectral features that could be used to interpret a future time-resolved X-ray absorption experiment.
几十年来,人们一直在广泛研究极性溶剂中 4-(二甲基氨基)苯甲腈(DMABN)及其衍生物的双荧光。除了局域低能(LE)极小值外,激发态势能表面上的分子内电荷转移(ICT)极小值也被提出作为双荧光的机制,其中大的几何弛豫和分子轨道重排是 ICT 途径的关键特征。在此,我们使用了含单重和双重激发的电子振动耦合簇(EOM-CCSD)和含时密度泛函(TDDFT)方法来研究一系列被提议为 ICT 结构的几何构象的激发态势能表面的分布。为了根据潜在的实验可观测量来关联这些几何形状和价激发态,我们为每个预测的“路标”结构计算了氮 K 边基态和激发态吸收光谱,并确定了几个可以用于解释未来的时间分辨 X 射线吸收实验的关键光谱特征。