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Tuning the role of charge-transfer states in intramolecular singlet exciton fission through side-group engineering

机译:通过侧基工程调整电荷转移态在分子内单线态激子裂变中的作用

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Understanding the mechanism of singlet exciton fission, in which a singlet exciton separates into a pair of triplet excitons, is crucial to the development of new chromophores for efficient fission-sensitized solar cells. The challenge of controlling molecular packing and energy levels in the solid state precludes clear determination of the singlet fission pathway. Here, we circumvent this difficulty by utilizing covalent dimers of pentacene with two types of side groups. We report rapid and efficient intramolecular singlet fission in both molecules, in one case via a virtual charge-transfer state and in the other via a distinct charge-transfer intermediate. The singlet fission pathway is governed by the energy gap between singlet and charge-transfer states, which change dynamically with molecular geometry but are primarily set by the side group. These results clearly establish the role of charge-transfer states in singlet fission and highlight the importance of solubilizing groups to optimize excited-state photophysics.
机译:了解单重态激子裂变的机制,其中单重态激子分离为一对三重态激子,对于开发高效裂变敏化太阳能电池的新生色团至关重要。在固态中控制分子堆积和能量水平的挑战使得难以确定单重态裂变途径。在这里,我们通过利用并五苯的共价二聚体和两种侧基来解决这一难题。我们报告了两个分子中快速有效的分子内单态裂变,一种情况是通过虚拟电荷转移状态发生,另一种情况是通过不同的电荷转移中间体发生。单线态裂变路径由单线态和电荷转移态之间的能隙控制,该能隙随分子几何形状动态变化,但主要由侧基决定。这些结果清楚地确立了电荷转移态在单线态裂变中的作用,并突出了增溶基团以优化激发态光物理的重要性。

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