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无重原子情况下的系统间交叉外包:吡啶酮硼二吡咯 - C 配合物中的能量转移动力学

Outsourcing Intersystem Crossing without Heavy Atoms: Energy Transfer Dynamics in PyridoneBODIPY-C Complexes.

作者信息

Swedin Rachel K, Healy Andrew T, Schaffner Jacob W, Kuzmin Ilya A, Zatsikha Yuriy V, Nemykin Victor N, Blank David A

机构信息

Department of Chemistry, University of Minnesota, 207 Pleasant St. SE, Minneapolis, Minnesota 55455, United States.

Department of Chemistry, University of Manitoba, Winnipeg, MB R3T 2N2, Canada.

出版信息

J Phys Chem Lett. 2022 Sep 29;13(38):8845-8850. doi: 10.1021/acs.jpclett.2c02388. Epub 2022 Sep 16.

Abstract

The excited state dynamics in two fully characterized pyridoneBODIPY-fullerene complexes were investigated using time-resolved spectroscopy. Photoexcitation was initially localized on the pyridoneBODIPY chromophore. The energy was rapidly transferred to the fullerene, which subsequently underwent ISC to form a triplet state and returned the energy to the pyridoneBODIPY via triplet-triplet energy transfer. This ping-pong energy transfer mechanism resulted in efficient (>85%) overall conversion of the excited state pyridoneBODIPY constituent despite a complete lack of ISC in the pyridoneBODIPY in the absence of the fullerene partner. The small difference in attachment chemistry for the fullerene did not impact the initial singlet energy transfer. However, the -methylpyrrolidine bridge did slow both the triplet-triplet energy transfer and the ultimate relaxation rate of the final triplet state when compared to an isoxazole-based bridge. The rates of each step were quantified, and computational predictions were used to complement the proposed mechanism and energetics. The result demonstrated efficient triplet sensitization of a strong chromophore that lacks significant spin-orbit coupling.

摘要

利用时间分辨光谱研究了两种完全表征的吡啶酮硼二吡咯-富勒烯配合物中的激发态动力学。光激发最初定域在吡啶酮硼二吡咯发色团上。能量迅速转移到富勒烯上,富勒烯随后经历系间窜越形成三重态,并通过三重态-三重态能量转移将能量返回给吡啶酮硼二吡咯。这种乒乓式能量转移机制导致激发态吡啶酮硼二吡咯组分的总体转化率很高(>85%),尽管在没有富勒烯伙伴的情况下,吡啶酮硼二吡咯中完全不存在系间窜越。富勒烯连接化学的微小差异并未影响初始单线态能量转移。然而,与基于异恶唑的桥相比,-甲基吡咯烷桥确实减缓了三重态-三重态能量转移以及最终三重态的最终弛豫速率。对每个步骤的速率进行了量化,并使用计算预测来补充所提出的机制和能量学。结果表明,对于缺乏显著自旋-轨道耦合的强发色团,三重态敏化效果良好。

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