化学
系统间交叉
荧光
反应速率常数
动力学
有机发光二极管
材料科学
理论(学习稳定性)
生物系统
热力学
化学物理
纳米技术
计算机科学
激发态
光学
物理
单重态
机器学习
生物
量子力学
图层(电子)
作者
Youichi Tsuchiya,Stefan Diesing,Fatima Bencheikh,Yoshimasa Wada,Paloma L. dos Santos,Hironori Kaji,Eli Zysman‐Colman,Ifor D. W. Samuel,Chihaya Adachi
标识
DOI:10.1021/acs.jpca.1c04056
摘要
The photophysical analysis of thermally activated delayed fluorescence (TADF) materials has become instrumental for providing insights into their stability and performance, which is not only relevant for organic light-emitting diodes but also for other applications such as sensing, imaging, and photocatalysis. Thus, a deeper understanding of the photophysics underpinning the TADF mechanism is required to push materials design further. Previously reported analyses in the literature of the kinetics of the various processes occurring in a TADF material rely on several a priori assumptions to estimate the rate constants for forward and reverse intersystem crossing. In this report, we demonstrate a method to determine these rate constants using a three-state model together with a steady-state approximation and, importantly, no additional assumptions. Further, we derive the exact rate equations, greatly facilitating a comparison of the TADF properties of structurally diverse emitters and providing a comprehensive understanding of the photophysics of these systems.
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