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通过中间态实现并五苯低聚物中的分子内单重态裂变。

Intramolecular Singlet Fission in Pentacene Oligomers via an Intermediate State.

机构信息

Department of Applied Chemistry for Environment, Graduate School of Science and Technology, Kwansei Gakuin University, 669-1330 Sanda, Japan.

Department of Chemistry, Graduate School of Science and Technology, Kwansei Gakuin University, 669-1330 Sanda, Japan.

出版信息

J Phys Chem B. 2023 May 25;127(20):4554-4561. doi: 10.1021/acs.jpcb.3c00516. Epub 2023 May 16.

Abstract

Intramolecular singlet fission (iSF) is an efficient strategy of multiexciton generation via a singlet exciton splitting into a correlated triplet pair in one organic molecule with more than two chromophores. Propeller-shaped iptycene-linked triisopropylsilyl(TIPS)-ethynyl functionalized pentacene oligomers (pent-monomer, pent-dimer, and pent-trimer) were synthesized, and the iSF dynamics of pent-dimer and -trimer were monitored by a visible-near-IR transient absorption (TA) spectroscopy. Quantum yields of the triplet pair, ∼80%, of both estimated by near-IR TA spectral analysis are in good agreement with the results of global analysis and triplet sensitization experiments. The iSF rate of pent-trimer is slightly faster than that of pent-dimer even with one more chromophore site. The unexpectedly weak difference indicates the existence of an intermediate process to realize iSF. The intermediate process might be determined by through-bond electronic coupling of the homoconjugation bridge in the pentacene oligomers. Our results suggest the importance of the rigid bridge to the fast iSF rate and the elongated lifetime of the correlated triplet pair in pentacene oligomers.

摘要

分子内单态裂变(iSF)是一种有效的多激子产生策略,它通过一个有机分子中的一个单态激子分裂成一对相关的三重态对来实现,该有机分子中具有两个以上的发色团。合成了轮桨形连接三异丙基硅基(TIPS)-乙炔基官能化的五并苯寡聚物(五-单体、五-二聚体和五-三聚体),并通过可见-近红外瞬态吸收(TA)光谱监测了五-二聚体和五-三聚体的 iSF 动力学。通过近红外 TA 光谱分析估算的三重态对的量子产率约为 80%,这与全局分析和三重态敏化实验的结果非常吻合。即使增加了一个发色团位点,五-三聚体的 iSF 速率也略快于五-二聚体。出乎意料的微弱差异表明存在实现 iSF 的中间过程。中间过程可能由五并苯寡聚物中同共轭桥的通过键电子耦合决定。我们的结果表明,在五并苯寡聚物中,刚性桥对于快速 iSF 速率和相关三重态对的延长寿命非常重要。

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