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首页> 外文期刊>Comptes Rendus Chimie >Structures and spectral properties of heteroleptic copper (I) complexes: A theoretical study based on density functional theory
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Structures and spectral properties of heteroleptic copper (I) complexes: A theoretical study based on density functional theory

机译:杂铜(I)配合物的结构和光谱性质:基于密度泛函理论的理论研究

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摘要

The structures and electronic absorption spectra of newly synthesized heteroleptic copper (I) complexes [CuL1L2]~+ (L1 = phen-imidazole and/or L2 = dipyrido [3,2-a:2',3'-c] phenazine derivatives) are analyzed under the light of density functional theory (DFT) and time-dependent DFT (TD-DFT). The ground states geometries, characterized by π-stacking interactions, have been optimized using PBE-D functional taking into account dispersion correction. The UV-visible theoretical absorption spectra have been calculated using B3LYP functional in vacuum and taking into account solvent corrections by means of the polarized continuum model (PCM). Whereas the PBE-D functional is well adapted to the determination of the structures, it does underestimate drastically the transition energies. The spectra are characterized by high density of states, mainly metal-to-ligand-charge-transfer (MLCT) and intra-Iigand (IL), between 600 nm and 250 nm. Most of the complexes show an intense band in the near-UV energy domain (~320 nm) corresponding to an IL transition. The lowest part of the absorption spectra, starting at 600 nm, corresponds to MLCT transitions leading to a shoulder observed experimentally between 400 and 500 nm. The upper part of the spectra, beyond 300 nm, puts in evidence strong mixing between ligand-to-ligand-charge-transfer (LLCT), IL and MLCT states.
机译:新合成的杂多铜(I)配合物[CuL1L2]〜+(L1 = phen-咪唑和/或L2 =二吡啶基[3,2-a:2',3'-c]吩嗪衍生物)的结构和电子吸收光谱根据密度泛函理论(DFT)和随时间变化的DFT(TD-DFT)进行了分析。考虑到色散校正,已使用PBE-D功能优化了以π堆积相互作用为特征的基态几何形状。已使用B3LYP在真空中进行了功能,并考虑到通过极性连续介质模型(PCM)进行的溶剂校正,计算了UV-可见的理论吸收光谱。尽管PBE-D功能非常适合确定结构,但它的确大大低估了过渡能。光谱的特征是在600 nm至250 nm之间的高密度状态,主要是金属到配体电荷转移(MLCT)和内部配体(IL)。大多数复合物在近紫外能量域(〜320 nm)处显示一个很强的能带,与IL跃迁相对应。从600 nm开始的吸收光谱的最低部分对应于MLCT跃迁,该跃迁导致实验观察到400至500 nm之间的肩峰。光谱的上部(超过300 nm)表明,配体-配体-电荷转移(LLCT),IL和MLCT状态之间强烈混合。

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