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Calculating transition dipole moments of phosphorescent emitters for efficient organic light-emitting diodes

机译:计算高效有机发光二极管磷光发射器的转变偶极矩

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摘要

The out-coupling of light from an organic light-emitting diode, and thus its efficiency, strongly depends on the orientation of the transition dipole moment (TDM) of the emitting molecules with respect to the substrate surface. Despite the importance of this quantity, theoretical investigations of the direction of the TDM of phosphorescent emitters based on iridium(III) complexes remain limited. One challenge is to find an appropriate level of theory able to accurately predict the direction of the TDM. Here, we report relativistic time-dependent density functional theory (TDDFT) calculations of the TDM, emission energies and lifetimes for both the ground-state (S-0) and triplet (T-1) excited-state geometries of fac-tris(2-phenylpyridyl)iridium(III) (Ir(ppy)(3)), using the two-component zero-order regular approximation (ZORA) or including spin-orbit coupling (SOC) perturbatively using the simpler one-component (scalar) formulation. We show that the one-and two-component approaches give similar emission energies and overall radiative lifetimes for each individual geometry. Use of the S-0 geometry leads to two of the excited triplet substates being degenerate, with the degeneracy lifted for the T-1 geometry, with the latter matching experiment. Two-component calculations using the T-1 geometry give results for the direction of the TDM more consistent with experiment than calculations using the S-0 geometry. Finally, we show that adding a dielectric medium does not affect the direction of TDM significantly, but leads to better agreement with the experimentally measured radiative lifetime.
机译:来自有机发光二极管的光的外耦合,因此其效率强烈地取决于发射分子相对于基材表面的过渡偶极力矩(TDM)的取向。尽管该数量的重要性,但基于铱(III)复合物的磷光发射器TDM方向的理论研究仍然有限。一个挑战是找到能够准确预测TDM方向的适当水平的理论。在这里,我们报告基于态(S-0)和Trioll(T-1)兴奋状态几何的TDM,发射能量和寿命的相对论时间依赖性密度泛函理论(TDDFT)计算( 2-苯基吡啶基)铱(III)(IR(ppy)(3)),使用双组分零阶定期近似(zora)或使用更简单的单组分(标量)扰动旋转轨道耦合(SoC)公式。我们表明,单个和双组分方法为每个单独的几何形状提供了类似的发射能量和整体辐射寿命。使用S-0几何形状导致两个激励的三态变化物是退化的两个,用后一个匹配的实验举起了T-1几何形状的退出。使用T-1几何形状的双组分计算为TDM的方向提供了与使用S-0几何形状的计算更一致的TDM的方向。最后,我们表明添加电介质介质不会显着影响TDM的方向,而是导致与实验测量的辐射寿命更好。

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