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Chemical and conformational control of the energy gaps involved in the thermally activated delayed fluorescence mechanism

机译:涉及热活化延迟荧光机制的能量间隙的化学和构象控制

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This review summarises the significant developments in our understanding and control of thermally-activated delayed fluorescence (TADF) molecules and the spin-vibronic coupling mechanism, from which we have designed new generations of emitters. It covers both the theoretical and experimental characterization of the physical and chemical aspects of model TADF emitters. We focus on how to correctly obtain the singlettriplet energy gaps (DEST) that must be overcome by the triplet excited states in the reverse intersystem crossing (rISC) process, highlighting the differences between: the DEST estimated from the energy difference between the fluorescence and phosphorescence ((CT)-C-1-(LE)-L-3 gap); and the activation energy (E-a) estimated from the Arrhenius plot ((CT)-C-1-(CT)-C-3 gap). The discussion considers the different external factors and design principles that can influence these energy gaps and ultimately the device performance.
机译:本综述总结了我们对热激活延迟荧光(TADF)分子和旋转式振动耦合机制的显着发展,我们设计了新的发射器。 它涵盖了模型TADF发射器的物理和化学方面的理论和实验表征。 我们专注于如何正确地获得必须在反向线程交叉(RISC)过程中必须克服的单片机能量差距(DEST),突出显示:从荧光和磷光之间的能量差估计的DEST估计的差异 ((CT)-C-1-(LE)-L-3间隙); 并且从Arrhenius图((CT)-C-1-(CT)-C-3间隙)估计的激活能量(E-A)。 讨论考虑了不同的外部因素和设计原则,可以影响这些能量差距并最终实现设备性能。

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