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侧链电离可实现氮杂喹二亚甲基骨架中的超快分子内单线态裂变。

Side-chain ionization enables ultrafast intramolecular singlet fission in the azaquinodimethane skeleton.

作者信息

Wu Zixiang, Anderson Christopher L, Zhang Teng-Shuo, Liu Yi, Fu Hongbing, Wang Long

机构信息

Key Laboratory of Interface Science and Engineering in Advanced Materials, Ministry of Education, Taiyuan University of Technology Taiyuan 030024 P. R. China

The Molecular Foundry, Lawrence Berkeley National Laboratory Berkeley CA 94720 USA

出版信息

Chem Sci. 2025 Jun 19. doi: 10.1039/d5sc01980j.

Abstract

Singlet fission (SF) could significantly alleviate thermalization losses of high-energy photons, thus holding great potential for improving the power conversion efficiency of solar cells. Conventional SF materials require an intricate control of molecular packing motifs in the solid state to achieve efficient multiexciton generation. Small molecule intramolecular singlet fission (iSF) materials have emerged as promising alternatives and show great potential for practical device applications. However, the scope of such iSF materials remains rather limited, necessitating innovative molecular design strategies. Herein, we present how a side-chain ionization strategy leads to an iSF chromophore based on the azaquinodimethane (AQM) ring system. Systematic theoretical and spectroscopic analyses reveal that the direct attachment of electron-withdrawing ionic groups to the conjugated AQM core renders the originally fluorescent AQM nonemissive, leading to ionic AQM (iAQM) derivatives capable of ultrafast iSF to populate triplet-like species. Further fine-tuning of the iAQM skeleton imparts subtle intermolecular interactions that are indispensable for the efficient separation of triplet pairs following iSF in the aggregated state. Our findings offer unprecedented insights into molecular design and triplet exciton dynamics, laying the foundation for the discovery of rare molecular iSF materials.

摘要

单线态裂变(SF)能够显著减轻高能光子的热化损失,因此在提高太阳能电池的功率转换效率方面具有巨大潜力。传统的SF材料需要对固态下的分子堆积模式进行精细控制,以实现高效的多激子产生。小分子分子内单线态裂变(iSF)材料已成为有前途的替代方案,并在实际器件应用中显示出巨大潜力。然而,这类iSF材料的范围仍然相当有限,需要创新的分子设计策略。在此,我们展示了一种侧链离子化策略如何基于氮杂喹二甲烷(AQM)环系统产生一种iSF发色团。系统的理论和光谱分析表明,吸电子离子基团直接连接到共轭AQM核心上会使原本具有荧光的AQM不发光,从而产生能够进行超快iSF以填充类三重态物种的离子化AQM(iAQM)衍生物。对iAQM骨架的进一步微调赋予了微妙的分子间相互作用,这对于聚集态下iSF后三重态对的有效分离是必不可少的。我们的发现为分子设计和三重态激子动力学提供了前所未有的见解,为发现罕见的分子iSF材料奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac81/12284925/132607685415/d5sc01980j-s1.jpg

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