効率的な三重項生成を可能にする分子設計戦略を解明(Researchers Uncover Molecular Strategy for Efficient Triplet Generation)

2026-09-07 中国科学院(CAS)

中国科学院大連化学物理研究所の研究チームは、金属を含まない有機分子で効率的に三重項励起状態を生成するための新たな分子設計原理を明らかにした。ペリレンジイミド系ドナー・アクセプター分子PBI-4Czをモデルとして、ドナーとアクセプターの二面角を制御すると、長波長の電荷移動(CT)吸収に必要な電子結合を保ちながら、スピン軌道電荷移動系間交差(SOCT-ISC)による三重項生成を促進できることを示した。温度依存超高速分光測定から、分子構造の揺らぎを抑制すると、望ましくない一重項状態からの電荷再結合が抑えられ、三重項生成効率が向上することも判明した。さらに、この分子は赤色光駆動の三重項―三重項消滅型光アップコンバージョンを実現した。光化学エネルギー変換や有機オプトエレクトロニクスに応用可能な光増感剤設計への新たな指針となる。

<関連情報>

有機ドナー・アクセプター分子における、強力な電荷移動吸収と効率的な三重項状態形成の同時実現 Simultaneously Strong Charge-Transfer Absorption and Efficient Triplet Formation in Organic Donor–Acceptor Molecules

Bo Zhang;Zhaolong Wang;Xubin Wang;Runze Liu;Hong Zhang;Chengming Nie;Jingyi Zhu;Kaifeng Wu
Journal of the American Chemical Society  Published:August 08, 2026
DOI:https://doi.org/10.1021/jacs.6c08126

効率的な三重項生成を可能にする分子設計戦略を解明(Researchers Uncover Molecular Strategy for Efficient Triplet Generation)

Abstract

Molecular triplet excited states play a crucial role in applications such as photocatalysis and photodynamic therapy. Spin–orbit charge-transfer intersystem crossing (SOCT-ISC) in pure organic donor–acceptor molecules offers an effective means to convert singlet charge-transfer states into triplet products without relying on heavy atoms. To date, however, quantitative insights into SOCT-ISC systems remain limited, and it is unclear how various recombination processes compete with the triplet formation channel. Here, we conduct a systematic study of excited-state dynamics in a PBI-4Cz pentad, comprising four carbazole donor units situated at the ortho-positions of a perylene bisimide acceptor, in different environments and under different temperatures. We find that the PBI triplet formation yield in 2-methyltetrahydrofuran solvent increases from 10% to 60% as the temperature decreases from 300 to 80 K, whereas it is temperature-independent (45%) in a poly(methyl methacrylate) matrix. Global analysis of transient absorption kinetics shows that the temperature dependence in solvent arises from more substantial suppression of the singlet recombination channel than the triplet formation channel due to gradually frozen molecular configuration with decreasing temperature. Importantly, we establish that an intermediate donor–acceptor dihedral angle (i.e., neither coplanar nor orthogonal) can simultaneously allow for efficient charge-transfer absorption, ultrafast charge separation, and efficient triplet formation, which allows us to demonstrate red-light-driven photon upconversion using the PBI-4Cz pentad as a sensitizer. These unprecedented insights for SOCT-ISC provide guidelines for the design and control of optical properties and triplet formation yields in pure organic systems.

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