Nonorthogonal Configuration Interaction for Singlet Fission: Beyond the Dimer

IF 3.2 3区 化学 Q2 CHEMISTRY, PHYSICAL The Journal of Physical Chemistry C Pub Date : 2025-02-17 DOI:10.1021/acs.jpcc.4c08656
C. Sousa, X. López, X. Dong, R. Broer, T. P. Straatsma, C. de Graaf
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Abstract

Non-orthogonal configuration interaction with fragment calculations are presented for a number of compounds that show singlet fission properties: (i) four perylene-diimide derivatives, (ii) crystalline pentacene and its (B,N)-substituted variant, and (iii) a regular and a distorted stack of three indolonaphthyridine molecules. The electronic couplings between the singlet excitonic states (S1) and the singlet-coupled double triplet (T1T1), the so-called singlet fission coupling, were computed from ensembles with two and three molecules, and except for some small deviations when charge transfer states were included, results are virtually the same. Ensembles of three molecules were used to study the mechanisms of triplet separation, double triplet diffusion, and singlet and triplet exciton diffusion. The calculations show that apart from the standard mechanism for the generation of two uncoupled triplet states (S1T1T1T1...T1), there are two other possible pathways: the direct generation from the singlet excitonic state (S1T1...T1) and the process in which the excitonic state evolves in a superposition of T1T1 and T1...T1 states. The electronic coupling for triplet diffusion is in general much smaller than for singlet diffusion.

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单线态裂变的非正交构型相互作用:超越二聚体
本文提出了一些具有单线态裂变特性的化合物的非正交构型相互作用与片段计算:(i)四个苝-二亚胺衍生物,(ii)晶体并戊烯及其(B,N)取代变体,以及(iii)三个吲哚萘啶分子的规则和扭曲堆叠。单重态激子态(S1)和单重态耦合双三重态(T1T1)之间的电子耦合,即所谓的单重态裂变耦合,是由两分子和三分子系综计算得到的,除了包括电荷转移态时的一些小偏差外,结果几乎是相同的。利用三分子系综研究了三重态分离、双三重态扩散、单线态和三重态激子扩散的机理。计算表明,除了产生两个不耦合三重态(S1→T1T1→T1…T1)的标准机制外,还有两种可能的途径:单线态激子态(S1→T1…T1)的直接产生和激子态在T1T1和T1叠加中演化的过程。T1状态。三重态扩散的电子耦合通常比单线态扩散小得多。
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来源期刊
The Journal of Physical Chemistry C
The Journal of Physical Chemistry C 化学-材料科学:综合
CiteScore
6.50
自引率
8.10%
发文量
2047
审稿时长
1.8 months
期刊介绍: The Journal of Physical Chemistry A/B/C is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, and chemical physicists.
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