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Quantum Dynamics Simulations Reveal Vibronic Effects on the Optical Properties of [n]Cycloparaphenylenes

机译:量子动力学模拟显示振动对[n]环对亚苯基的光学性质的影响

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The size-dependent ultraviolet/visible photophysical property trends of [njcycloparaphenylenes ([h]CPPs, n~6,8, and 10) are theoretically investigated using quantum dynamics simulations. For geometry optimizations on the ground-and excited-state Born—Oppenheimer potential energy surfaces (PBSs), we employ density functional theory (DFT) and time-dependent DFT calculations. Harmonic normal-mode analyses are carried out for the electronic ground state at Franck—Condon geometries. A diabatic Hamiltonian, comprising four low-lying singlet excited electronic states and 26 vibrational degrees of freedom of CPP, is constructed within the linear vibronic coupling (VC) model to elucidate the absorption spectral features in the range of 300—500 ran. Quantum nuclear dynamics is simulated within the multiconfiguration time-dependent Hartree approach to calculate the vibronic structure of the excited electronic states. The symmetry-forbidden S_0→ S1 transition appears in the longer wavelength region of the spectrum with weak intensity due to VC. It is found that the Jahn—Teller and pseudo-Jahn-Teller effects in the doubly degenerate S2 and S3 electronic states are essential in the quantitative interpretation of the experimental observation of a broad absorption peak around 340 nm. The "" vibronic mixing of the St state with higher electronic states is responsible for the efficient photoluminescence from the S1 state. The fluorescence properties are characterized on the basis of the stationary points of the excited-state PBSs. The findings reveal that vibronic effects become important in determining the photophysical properties of CPPs with increased ring size.
机译:理论上使用量子动力学模拟研究了[njcycloparaphenylenes([h] CPPs,n〜6,8和10)的尺寸依赖性紫外/可见光物理性质趋势。对于基态和激发态Born-Oppenheimer势能面(PBS)的几何优化,我们采用密度泛函理论(DFT)和与时间有关的DFT计算。在Franck-Condon几何结构中对电子基态进行谐波正态分析。在线性振动耦合(VC)模型中构造了包含四个低地单线态激发电子态和26个CPP振动自由度的非绝热哈密顿量,以阐明300-500纳米范围内的吸收光谱特征。在多配置时变哈特里(Hartree)方法中模拟了量子核动力学,以计算激发电子态的振动结构。由于VC,对称性禁止的S_0→S1跃迁出现在光谱的较长波长区域,强度较弱。发现在简并的S2和S3电子态中的Jahn-Teller和拟Jahn-Teller效应在定量解释340 nm附近宽吸收峰的实验观察中是必不可少的。 St状态与较高电子状态的“”振动混合是S1状态有效的光致发光的原因。荧光性质基于激发态PBS的固定点进行表征。研究结果表明,振动效应在确定环尺寸增加的CPP的光物理性质中变得很重要。

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