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环金属化铂(II)β-二酮配合物的结构-发射性质关系

Structure-Emission Property Relationships in Cyclometalated Pt(II) β-Diketonate Complexes.

作者信息

Heil Adrian, Marian Christel M

机构信息

Institut für Theoretische Chemie und Computerchemie , Heinrich-Heine-Universität Düsseldorf , Universitätsstr. 1 , D-40225 Düsseldorf , Germany.

出版信息

Inorg Chem. 2019 May 6;58(9):6123-6136. doi: 10.1021/acs.inorgchem.9b00403. Epub 2019 Apr 25.

Abstract

Extending the ligand π-system of phosphorescent (CC*) or (CN) cyclometalated platinum(II) β-diketonate complexes can lead to large and seemingly abrupt variations of the photophysical properties such as triplet quantum yields and phosphorescence lifetimes. Quantum chemical studies using methods including elements from density functional theory (DFT) and multireference configuration interaction (MRCI) as well as spin-orbit coupling (SOC) provide a rationale for these observations. In the Franck-Condon region, the first excited singlet states (S) of these complexes are characterized by mixed metal-to-ligand charge-transfer (MLCT) and ligand-centered (LC) excitations. With increasing extension of the effective π-system, the lowest-lying triplet state yields more and more LC character, thus leading to a decrease of the phosphorescence rate constant. The ability to undergo efficient intersystem crossing from S to T is not diminished as the S state largely retains its character. In the N-heterocyclic carbene (NHC) complexes investigated here, at least two triplet states are found energetically below the S state. Out-of-plane distortion enhances the probability for nonradiative decay of the triplet population. In the smaller compounds emitting in the violet or blue spectral region, the phosphorescent state is separated from the lowest-lying dark metal-centered (MC) triplet state by a small barrier only, explaining their experimentally observed low photoluminescence quantum yields in liquid solution. The semiempirical DFT/MRCI-R2018 Hamiltonian employed in our studies proves well-suited for investigating the absorption and emission properties of these platinum(II) complexes. Generally, good agreement is observed between our calculated data and the experimental findings.

摘要

扩展磷光(CC*)或(CN)环金属化铂(II)β-二酮配合物的配体π体系可导致光物理性质出现大幅且看似突然的变化,如三重态量子产率和磷光寿命。使用包括密度泛函理论(DFT)、多参考组态相互作用(MRCI)以及自旋轨道耦合(SOC)等元素的方法进行的量子化学研究为这些观察结果提供了理论依据。在弗兰克-康登区域,这些配合物的第一激发单重态(S)的特征是混合的金属到配体电荷转移(MLCT)和配体中心(LC)激发。随着有效π体系的扩展增加,最低三重态具有越来越多的LC特征,从而导致磷光速率常数降低。从S到T进行有效系间窜越的能力并未减弱,因为S态在很大程度上保留了其特征。在此处研究的N-杂环卡宾(NHC)配合物中,发现至少有两个三重态在能量上低于S态。面外畸变增加了三重态粒子非辐射衰变的概率。在发射紫光或蓝光光谱区域的较小化合物中,磷光态与最低的暗金属中心(MC)三重态仅由一个小势垒隔开,这解释了它们在液体溶液中实验观察到的低光致发光量子产率。我们研究中使用的半经验DFT/MRCI-R2018哈密顿量被证明非常适合研究这些铂(II)配合物的吸收和发射性质。一般来说,我们的计算数据与实验结果之间观察到了良好的一致性。

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