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过渡金属配合物中的吸收光谱、发射特性及超快系间窜越过程:含时密度泛函理论与自旋轨道耦合

Absorption Spectroscopy, Emissive Properties, and Ultrafast Intersystem Crossing Processes in Transition Metal Complexes: TD-DFT and Spin-Orbit Coupling.

作者信息

Daniel Chantal

机构信息

Laboratoire de Chimie Quantique, Institut de Chimie UMR 7177 CNRS/Université de Strasbourg, 1 Rue Blaise Pascal BP 296/R8, F-67008, Strasbourg Cedex, France,

出版信息

Top Curr Chem. 2016;368:377-413. doi: 10.1007/128_2015_635.

Abstract

Absorption spectroscopy, emissive properties, and ultrafast intersystem crossing processes in transition metal complexes are discussed in the light of recent developments in time-dependent density functional theory (TD-DFT), spin-orbit coupling (SOC) effects, and non-adiabatic excited states dynamics. Methodological highlights focus on spin-orbit and vibronic couplings and on the recent strategies available for simulating ultra-fast intersystem crossings (ISC).The role of SOC in the absorption spectroscopy of third-row transition metal complexes is illustrated by two cases studies, namely Ir(III) phenyl pyridine and Re(I) carbonyl bipyridine complexes.The problem of luminescence decay in third-row transition metal complexes handled by TD-DFT linear and quadratic response theories including SOC is exemplified by three studies: (1) the phosphorescence of Ir(III) complexes from the lowest triplet state; (2) the emissive properties of square planar Pt(II) complexes with bidentate and terdentate ligands characterized by low-lying metal-to-ligand-charge-transfer (MLCT) and metal-centered (MC) states; and (3) the ultra-fast luminescence decay of Re(I) carbonyl bipyridine halides via low-lying singlet and triplet charge transfer states delocalized over the bipyridine and the halide ligands.Ultrafast ISC occurring in spin crossover [Fe (bpy)3]2+, in [Ru (bpy)3]2+, and [Re (Br)(CO)3(bpy] complexes are deciphered thanks to recent developments based on various approaches, namely non-radiative rate theory within the Condon approximation, non-adiabatic surface hopping molecular dynamics, and quantum wave packet dynamics propagation.

摘要

根据含时密度泛函理论(TD-DFT)、自旋轨道耦合(SOC)效应和非绝热激发态动力学的最新进展,讨论了过渡金属配合物中的吸收光谱、发射特性和超快系间窜越过程。方法亮点集中在自旋轨道和振动耦合以及模拟超快系间窜越(ISC)的现有最新策略上。通过两个案例研究说明了SOC在第三排过渡金属配合物吸收光谱中的作用,即Ir(III)苯基吡啶和Re(I)羰基联吡啶配合物。通过三项研究举例说明了用包含SOC的TD-DFT线性和二次响应理论处理第三排过渡金属配合物中发光衰减的问题:(1)Ir(III)配合物从最低三重态的磷光;(2)具有以低能级金属到配体电荷转移(MLCT)和金属中心(MC)态为特征的双齿和三齿配体的平面正方形Pt(II)配合物的发射特性;(3)Re(I)羰基联吡啶卤化物通过在联吡啶和卤化物配体上离域的低能级单重态和三重态电荷转移态的超快发光衰减。由于基于各种方法的最新进展,即康登近似内的非辐射速率理论、非绝热表面跳跃分子动力学和量子波包动力学传播,解读了自旋交叉[Fe (bpy)3]2+、[Ru (bpy)3]2+和[Re (Br)(CO)3(bpy]配合物中发生的超快ISC。

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