Symmetry-breaking charge separation in a null-excitonic 3-dimensional rigid nonconjugated trimer.

Kangwei Wang, Xingyu Chen, Shaoqian Peng, Guijie Liang, Jingwen Xu, Lei Zhang, Di Wu, Jianlong Xia
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Abstract

Photoinduced symmetry-breaking charge separation (SB-CS) has been extensively observed in various oligomers and aggregates, which holds great potential for robust artificial solar energy conversion systems. It attaches great importance to the precise manipulation of interchromophore electronic coupling in realizing efficient SB-CS. The emerging studies on SB-CS suggested that it could be realized in null-excitonic aggregates, and a long-lived SB-CS state was observed, which offers an advanced platform and has gathered immense attention in the SB-CS field. Here, we unveiled the null-exciton coupling induced ultrafast SB-CS in a rigid polycyclic aromatic hydrocarbon framework, triperyleno[3,3,3]propellane triimides (TPPTI), in which three chromophores were attached through a nonconjugated bridge. Through a combination of theoretical calculations and steady-state absorption results, we demonstrated that this nonconjugated TPPTI possesses negligible exciton coupling. Increased solvent polarity was found to significantly enhance state mixing between local excited and charge transfer states. Using transient absorption spectroscopy, ultrafast SB-CS was observed in highly polar dimethylformamide, facilitated by a selective hole-transfer coupling and a favorable charge separation free energy (ΔGCS). Additionally, the rate ratio between SB-CS and charge recombination was at least high to 1800 in dimethylformamide. This investigation provides profound insights into the role of null-exciton coupling in dominating ultrafast SB-CS in multichromophoric systems.
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三维刚性非共轭三聚体中打破对称的电荷分离。
在各种低聚物和聚合体中广泛观察到了光诱导的对称性破坏电荷分离(SB-CS),这为稳健的人工太阳能转换系统提供了巨大的潜力。在实现高效 SB-CS 的过程中,对色团间电子耦合的精确控制非常重要。有关 SB-CS 的新兴研究表明,它可以在空致激子聚集体中实现,并观察到一种长寿命的 SB-CS 状态,这为 SB-CS 提供了一个先进的平台,并在 SB-CS 领域引起了极大的关注。在这里,我们揭示了在刚性多环芳烃框架--三超烯并[3,3,3]丙烷三亚胺(TPPTI)--中的空激子耦合诱导超快 SB-CS,其中三个发色团通过非共轭桥相连。通过理论计算和稳态吸收结果的结合,我们证明这种非共轭 TPPTI 的激子耦合可以忽略不计。我们发现,溶剂极性的增加会显著增强局部激发态和电荷转移态之间的状态混合。利用瞬态吸收光谱,在高极性的二甲基甲酰胺中观察到了超快的 SB-CS,这得益于选择性空穴传输耦合和有利的电荷分离自由能(ΔGCS)。此外,在二甲基甲酰胺中,SB-CS 与电荷重组之间的速率比至少高达 1800。这项研究深刻揭示了空-激子耦合在多色体系中主导超快 SB-CS 的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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