紧密正交和立体包覆的 6,12-二苯基吲哚并[3,2-b]咔唑-萘二甲酰亚胺电子供体-受体二元体中的电荷分离和系统间交叉

Xue Zhang , Ziqian Xu , Andrey A. Sukhanov , Xichuan Yang , Ayhan Elmali , Jianzhang Zhao , Bernhard Dick , Ahmet Karatay , Violeta K. Voronkova
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引用次数: 0

摘要

以6,12-二苯基吲哚[3,2-b]咔唑(ICz)为电子给体,萘酰亚胺(NI)为受体,制备了紧凑的电子给受体二元NI-ICz,研究了电子转移(ET)和热激活延迟荧光(TADF)性质。刚性和笨重的电子给体降低了ET的重组能(λ = 0.96 eV),利用Marcus倒区效应对电荷重组(CR),促进NI-ICz中长寿命的电荷分离(CS)态的形成。瞬态吸收(TA)光谱揭示了CS三重态(3CS)的形成(τ = 8.6 μs在正己烷中,1.4 μs在甲苯中,0.13 μs在乙腈中)。该二元体的TADF仅在正己烷中存在,而在极性溶剂中不存在,表明3CS→1CS反向ISC (RISC)是低效的,这为TADF的自旋-振动耦合机理提供了坚实的实验证据。NI-ICz三重态的小零场分裂(ZFS)参数(ΙDΙ = 900 MHz)证实了3CS态的形成。这些结果证明了在紧凑的电子供体-受体二偶体中实现长寿命CS态的可行性。研究结果还强调了紧密相连的3LE、1CS和3CS状态在实现TADF中的关键作用,其中3LE状态是促进TADF系统中RISC的重要中间状态。
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Charge separation and intersystem crossing in compact, orthogonal and sterically encumbered 6,12-diphenyl indolo[3,2-b]carbazole-naphthalimide electron donor–acceptor dyad†
A compact electron donor–acceptor dyad, , with 6,12-diphenyl-indolo[3,2-b]carbazole (ICz) as the electron donor and naphthalimide (NI) as the acceptor, was prepared to study its electron transfer (ET) and thermally activated delayed fluorescence (TADF) properties. The rigid and bulky electron donor reduced the reorganization energy (λ = 0.96 eV) for ET, which facilitated the formation of a long-lived charge separated (CS) state in by exploiting the Marcus inverted region effect on charge recombination (CR). Transient absorption (TA) spectroscopy revealed the formation of CS triplet (3CS) states (τ = 8.6 μs in n-hexane, 1.4 μs in toluene, and 0.13 μs in acetonitrile). TADF of this dyad was observed in n-hexane but was absent in polar solvents, indicating that 3CS → 1CS reversed ISC (RISC) was inefficient, which is solid experimental evidence for the spin-vibronic coupling mechanism of TADF. The small zero-field splitting (ZFS) parameter (|D| = 900 MHz) for the triplet state of confirmed the formation of the 3CS state. These results demonstrate the feasibility of achieving a long-lived CS state in compact electron donor–acceptor dyads. The findings also highlight the crucial role of the closely lying 3LE, 1CS and 3CS states in enabling TADF, where the 3LE state serves as an essential intermediate state to facilitate RISC in TADF systems.
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