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将蒄二亚胺与碳纳米环相连可使纯膜实现快速系间窜越。

Appending Coronene Diimide with Carbon Nanohoops Allows for Rapid Intersystem Crossing in Neat Film.

作者信息

Zhao Jingjing, Xu Jingwen, Huang Huaxi, Wang Kangwei, Wu Di, Jasti Ramesh, Xia Jianlong

机构信息

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Center of Smart Materials and Devices, Wuhan University of Technology, 430070, Wuhan, China.

International School of Materials Science and Engineering, Wuhan University of Technology, 430070, Wuhan, China.

出版信息

Angew Chem Int Ed Engl. 2024 Apr 24;63(18):e202400941. doi: 10.1002/anie.202400941. Epub 2024 Mar 26.

Abstract

The development of innovative triplet materials plays a significant role in various applications. Although effective tuning of triplet formation by intersystem crossing (ISC) has been well established in solution, the modulation of ISC processes in the solid state remains a challenge due to the presence of other exciton decay channels through intermolecular interactions. The cyclic structure of cycloparaphenylenes (CPPs) offers a unique platform to tune the intermolecular packing, which leads to controllable exciton dynamics in the solid state. Herein, by integrating an electron deficient coronene diimide (CDI) unit into the CPP framework, a donor-acceptor type of conjugated macrocycle (CDI-CPP) featuring intramolecular charge-transfer (CT) interaction was designed and synthesized. Effective intermolecular CT interaction resulting from a slipped herringbone packing was confirmed by X-ray crystallography. Transient spectroscopy studies showed that CDI-CPP undergoes ISC in both solution and the film state, with triplet generation time constants of 4.5 ns and 238 ps, respectively. The rapid triplet formation through ISC in the film state can be ascribed to the cooperation between intra- and intermolecular charge-transfer interactions. Our results highlight that intermolecular CT interaction has a pronounced effect on the ISC process in the solid state, and shed light on the use of the characteristic structure of CPPs to manipulate intermolecular CT interactions.

摘要

创新型三重态材料的发展在各种应用中发挥着重要作用。尽管通过系间窜越(ISC)对三重态形成进行有效调控在溶液中已得到充分证实,但由于存在通过分子间相互作用的其他激子衰变通道,固态下ISC过程的调制仍然是一个挑战。环对亚苯基(CPPs)的环状结构提供了一个独特的平台来调节分子间堆积,这导致了固态下可控的激子动力学。在此,通过将缺电子的蒄二酰亚胺(CDI)单元整合到CPP框架中,设计并合成了一种具有分子内电荷转移(CT)相互作用的供体-受体型共轭大环(CDI-CPP)。通过X射线晶体学证实了由错位人字堆积产生的有效分子间CT相互作用。瞬态光谱研究表明,CDI-CPP在溶液和薄膜状态下均经历ISC,三重态生成时间常数分别为4.5 ns和238 ps。薄膜状态下通过ISC快速形成三重态可归因于分子内和分子间电荷转移相互作用之间的协同作用。我们的结果突出了分子间CT相互作用对固态下ISC过程有显著影响,并为利用CPPs的特征结构来操纵分子间CT相互作用提供了启示。

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