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配体如何影响环金属化铂(II)配合物的量子产率:一项理论研究

How do ligands influence the quantum yields of cyclometalated platinum(ii) complexes, a theoretical research study.

作者信息

Yang Baozhu, Huang Shuang, Wang Jianhao

机构信息

School of Petrochemical Engineering, Changzhou University, Changzhou, 213164, China.

School of Mathematics & Physics, Changzhou University, Changzhou, 213164, China.

出版信息

Phys Chem Chem Phys. 2017 Aug 30;19(34):23454-23460. doi: 10.1039/c7cp02710a.

Abstract

A series of cyclometalated platinum(ii) complexes have been investigated with the TDDFT method. These complexes have similar structures but distinct phosphorescence quantum yields. Theoretical calculations were carried out to explain the differences in quantum yields from the conjugation effect of the cyclometalated ligand, molecular rigidity and ligand-field strength of the monodentate ligand. The radiative decay rate constants (k) have been discussed with the oscillator strength (f), the strength of the spin-orbit coupling (SOC) interaction between the lowest energy triplet excited state (T) and singlet excited states (S), and the energy gaps between E(T) and E(S). To illustrate the nonradiative decay processes, the transition states (TS) between the triplet metal-centered state (MC) and T states have been optimized. In addition, the minimum energy crossing points (MECPs) between MC and the ground states (S) were optimized. Finally, the potential energy curves along the nonradiative decay pathways are simulated. To obtain a phosphorescent complex with a high quantum yield, the complex should retain molecular rigidity well in the S and T states, while showing significant structural distortion at the MECP structure.

摘要

采用含时密度泛函理论(TDDFT)方法研究了一系列环金属化铂(II)配合物。这些配合物具有相似的结构,但磷光量子产率不同。进行了理论计算,以从环金属化配体的共轭效应、分子刚性和单齿配体的配体场强度来解释量子产率的差异。通过振子强度(f)、最低能量三重态激发态(T)与单重态激发态(S)之间的自旋轨道耦合(SOC)相互作用强度以及E(T)与E(S)之间的能隙,对辐射衰减速率常数(k)进行了讨论。为了说明非辐射衰减过程,优化了三重态金属中心态(MC)与T态之间的过渡态(TS)。此外,还优化了MC与基态(S)之间的最小能量交叉点(MECP)。最后,模拟了沿非辐射衰减途径的势能曲线。为了获得具有高量子产率的磷光配合物,该配合物在S态和T态应保持良好的分子刚性,而在MECP结构处表现出明显的结构畸变。

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