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A Direct Mechanism of Ultrafast Intramolecular SingletFission in Pentacene Dimers

机译:超快分子内单线态的直接机制并五苯二聚体的裂变

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摘要

Interest in materials that undergo singlet fission (SF) has been catalyzed by the potential to exceed the Shockley–Queisser limit of solar power conversion efficiency. In conventional materials, the mechanism of SF is an intermolecular process (xSF), which is mediated by charge transfer (CT) states and depends sensitively on crystal packing or molecular collisions. In contrast, recently reported covalently coupled pentacenes yield ∼2 triplets per photon absorbed in individual molecules: the hallmark of intramolecular singlet fission (iSF). However, the mechanism of iSF is unclear. Here, using multireference electronic structure calculations and transient absorption spectroscopy, we establish that iSF can occur via a direct coupling mechanism that is independent of CT states. We show that a near-degeneracy in electronic state energies induced by vibronic coupling to intramolecular modes of the covalent dimer allows for strong mixing between the correlated triplet pair state and the local excitonic state, despite weak direct coupling.
机译:对材料进行单线裂变(SF)的兴趣已被潜在超过太阳能转换效率的Shockley-Queisser极限所激发。在常规材料中,SF的机制是分子间过程(xSF),由电荷转移(CT)状态介导,并敏感地依赖于晶体堆积或分子碰撞。相比之下,最近报道的共价偶联的戊烯在单个分子中吸收的每个光子可产生约2个三联体:分子内单峰裂变(iSF)的标志。但是,iSF的机制尚不清楚。在这里,使用多参考电子结构计算和瞬态吸收光谱,我们确定iSF可以通过独立于CT状态的直接耦合机制发生。我们表明,通过共轭二聚体的分子内模式的振动耦合引起的电子态能量几乎简并性,尽管相关的直接耦合较弱,但在相关的三重态对和局部激子态之间却能实现强力混合。

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