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Nonadiabatic Dynamics of Cycloparaphenylenes with TD-DFTB Surface Hopping

机译:与TD-DFTB表面跳跃环丙基环烷基的非抗脂性动力学

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We implemented a version of the decoherence-corrected fewest switches surface hopping based on linear-response time-dependent density functional tight binding (TD-DFTB), enhanced by transition density analysis. The method has been tested for the gas-phase relaxation dynamics of two cycloparaphenylene molecules, [8]CPP and [10]CPP, explaining some important features of their nonadiabatic dynamics, such as the origin of their long fluorescence lifetimes (related to the slow radiative emission from the S-1 state) and the trend of increasing the fluorescence rate with the molecular size (related to an increase in the S-1-S-0 energy gaps and oscillator strengths in the larger molecule). The quality of the TD-DFTB electronic structure information was assessed through four quantities: excitation energies; charge-transfer (CT) numbers, which estimate the charge transfer character of states; participation ratio (PR), which describes delocalization of electronic density; and participation ratio of natural transition orbitals (PRNTO), which describes the multiconfigurational character of states. These quantities were computed during dynamics and recomputed for the same geometries with the higher-level long-range-corrected TD-LC-DFTB and a lower-level single-determinant approximation for the excited states, SD-(LC)-DFTB. Taking TD-LC-DFTB as the standard, TD-DFTB underestimates the excitation energies by similar to 0.5 eV and overestimates CT and PR. SD-DFTB underestimates excitation energies and overestimates CT to the same extent that TD-DFTB does, but it predicts reasonable PR distributions. SD-LC-DFTB leads to an extreme overestimation of the excitation energies by similar to 3 eV, overestimates the charge transfer character of the state, but predicts the PR values very close to those obtained with TD-LC-DFTB.
机译:我们在基于线性响应时间依赖性密度功能紧密绑定(TD-DFTB)的基础跳闸表面跳跃的版本,通过过渡密度分析增强。已经测试了两个环丙烷分子的气相松弛动力学的方法,[8] CPP和[10] CPP,解释了它们的非抗动性动态的一些重要特征,例如它们的长荧光寿命的起源(与缓慢有关S-1状态的辐射发射)以及将荧光速率提高荧光速率的趋势(与较大分子中S-1-S-0能量间隙和振荡器强度的增加有关)。通过四个数量评估TD-DFTB电子结构信息的质量:励磁能量;电荷转移(CT)编号,估计各国的电荷转移特征;参与比(PR),描述了电子密度的临床化;自然转型轨道(PRNTO)的参与比,其描述了各国的多功能性特征。在动态期间计算这些数量,并根据具有更高级别的远程校正的TD-LC-DFTB的相同几何形状计算,以及激发状态的较低级别的单个确定近似值,SD-(LC)-DFTB。以TD-LC-DFTB为标准,TD-DFTB通过类似于0.5eV和高估CT和PR来低估激励能量。 SD-DFTB低估激励能量,并在相同的程度上高估到TD-DFTB的程度,但它预测了合理的PR分布。 SD-LC-DFTB通过类似于3eV来极大地高估激励能量,高估状态的电荷传递特性,但预测与TD-LC-DFTB获得的那些非常接近的PR值。

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