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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Intramolecular Singlet Fission in Quinoidal Bi- and Tetrathiophenes: A Comparative Study of Low-Lying Excited Electronic States and Potential Energy Surfaces
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Intramolecular Singlet Fission in Quinoidal Bi- and Tetrathiophenes: A Comparative Study of Low-Lying Excited Electronic States and Potential Energy Surfaces

机译:醌型双和四噻吩分子内单线态裂变:低层激发电子态和势能面的比较研究

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Quinoidal bithiophene has recently been introduced (Varnayski, O. et al. J. Phys. Chem. Lett. 2015, "6, 1375-1384) as a very promising isolated organic compound for intramolecular singlet fission (iSF) with an outstanding SF quantum yield of approximate to 80% In contrast, another recent study (Ren, L. et al. J. Am. Chem. Soc. 2015, 137, 11294-11302) revealed that quinoidal tetrathiophenes have no activity in the iSF process and are strong fluorophores instead, with measured fluorescent quantum yields up to 53.1%. Using DFT and TD-DFT methods, the authors of the second contribution attributed the marked differences between these compounds to faster reverse T-2 -> S-1 intersystem crossing processes in the tetrathiophenes. To address this unprecedented discrepancy, quinoidal bithiophene and tetrathiophene compounds and their derivatives are carefully examined using the CASPT2 technique. Theoretical evidence is provided through detailed investigation of CASPT2 potential energy surfaces of different singlet and triplet states involved in the iSF process. Through comparison of the CASPT2 results with the CASSCF and RAS-2SF data, it is found that the dynamic electron correlation present in the CASPT2 method plays a crucial role for correct description of the multiexciton nature of the triplet pair (1)[TT] state in quinoidal bi- and tetrathiophenes. Effects of substitution and structural modification on iSF activity of these compounds are also examined using the CASPT2 method where the obtained results are in accordance with previous experimental predictions. These results contribute to a better understanding of the iSF mechanism in quinoidal systems which could be relevant for designing new iSF active compounds.
机译:喹啉二噻吩最近被引入(Varnayski,O.等人,J。Phys。Chem。Lett。2015,“ 6,1375-1384”),这是一种非常有前途的分离的有机化合物,用于分子内单峰裂变(iSF),具有出色的SF量子产率约为80%。相反,另一项最新研究(Ren,L.等人,J。Am。Chem。Soc。2015,137,11294-11302)显示,喹诺酮四噻吩在iSF过程中没有活性,并且很强相反,使用DFT和TD-DFT方法测得的荧光量子产率高达53.1%,第二贡献的作者将这些化合物之间的显着差异归因于T-2-> S-1系统间更快的反向交叉过程。为了解决这一前所未有的差异,使用CASPT2技术仔细检查了喹啉联噻吩和四噻吩化合物及其衍生物,并通过详细研究CASPT2的势能面提供了理论依据。 iSF流程涉及不同的单重态和三重态。通过将CASPT2结果与CASSCF和RAS-2SF数据进行比较,发现CASPT2方法中存在的动态电子相关性对于正确描述三重态对(1)[TT]状态的多激子性质起着至关重要的作用。在喹啉二噻吩和四噻吩中。还使用CASPT2方法检查了取代和结构修饰对这些化合物的iSF活性的影响,其中获得的结果与以前的实验预测一致。这些结果有助于更好地理解醌型系统中的iSF机制,这可能与设计新的iSF活性化合物有关。

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