系统间交叉
密度泛函理论
离子键合
量子产额
化学物理
分子
有机发光二极管
化学
计算化学
分子轨道
芘
荧光
带隙
材料科学
反离子
超级交换
从头算
光化学
产量(工程)
联轴节(管道)
杂原子
势能
工作(物理)
原子轨道
离子强度
分子振动
物理化学
从头算量子化学方法
旋转-振动耦合
作者
Yizi Meng,ZiYe Ning,Bowen Tang,YanYing Zhang,Leilei Cui,Xiaoning Liu,Lingling Lv
摘要
ABSTRACT Ionic thermally activated delayed fluorescence (iTADF) materials are promising for organic optoelectronics due to their solution processability and structural tunability, yet the synergistic regulation of reverse intersystem crossing (RISC) by heteroatom anchoring, heavy‐atom effects, and vibronic coupling remains underexplored. Four molecules (AC‐TPPO + , AC‐TPPS + , AC‐TPPO[Br], and AC‐TPPS[Br]) are systematically investigated via density functional theory (DFT), TD‐DFT, and excited‐state dynamics. All molecules feature twisted donor‐acceptor conformations, enabling spatial separation of frontier molecular orbitals and a small singlet–triplet energy gap (Δ E ST ) for RISC. The bromide counterion (Br − ) induces a heavy‐atom effect, enhancing spin‐orbit coupling strength and accelerating RISC rates by two orders of magnitude. Low‐to‐medium‐frequency vibrations further facilitate RISC by driving S 1 and T 1 potential energy surfaces to near‐degeneracy. The optimal AC‐TPPO[Br] achieves a high delayed fluorescence quantum yield ( Φ DF = 74.88%) with nearly 100% room‐temperature TADF contribution. This work provides a synergistic design paradigm and theoretical guidance for high‐performance OLED emitters.
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