Unearthing the Real-Time Excited State Dynamics from Antenna to Rare Earth Ions Using Ultrafast Transient Absorption

JACS Au Pub Date : 2024-08-20 DOI:10.1021/jacsau.4c00468
Waygen Thor, Hei-Yui Kai, Yik-Hoi Yeung, Yue Wu, Tsz-Lam Cheung, Leo K. B. Tam, Yonghong Zhang, Loïc J. Charbonnière, Peter A. Tanner, Ka-Leung Wong
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Abstract

The conventional energy transfer pathway in organic lanthanide complexes is purported to be from the excited singlet state of the chromophore to the triplet state and subsequently directly to the emitting state of the trivalent lanthanide ion. In this work, we found that the energy transfer occurs from the triplet state to the nearest energy level, instead of directly to the emitting state of the lanthanide ion. The triplet decay rate for different lanthanide ions follows an energy gap law from the triplet level to the receiving level of the lanthanide ion. Three different categories of complexes were synthesized and inspected using different techniques, demonstrating the universality of our findings. This work renews the insights to conventional findings, highlighting the importance of the energy gap between the triplet state and the nearest lanthanide energy level in optimization of light harvesting. The rationale of ligand design of chromophores should be reconsidered, leading to various applications of lanthanide complexes with enhanced quantum yield and brightness.

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利用超快瞬态吸收揭示从天线到稀土离子的实时激发态动态
有机镧系配合物的传统能量转移途径据称是从发色团的激发单重态到三重态,然后直接到三价镧系离子的发射态。在这项研究中,我们发现能量转移是从三重态到最近的能级,而不是直接到镧系离子的发射态。不同镧系离子的三重态衰变率遵循从三重态能级到镧系离子接收能级的能隙定律。我们用不同的技术合成并检测了三类不同的络合物,证明了我们发现的普遍性。这项工作更新了对传统发现的认识,强调了三重态与最近的镧系元素能级之间的能隙在优化光收集方面的重要性。应重新考虑发色团配体设计的基本原理,从而提高镧系配合物的量子产率和亮度。
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