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Insights into electronic and structural properties of novel Pd(II) salen-type complexes

机译:新型Pd(II)Salen型配合物的电子和结构性质的见解

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Novel palladium(II) complexes with salen-type ligands based on 3-methylsalicyladehyde and a set of aliphatic diamines (C1 to C4) have been synthesised and characterized by spectroscopic techniques (UV-Vis and FTIR), Density Functional Theory (DFT) calculations and single-crystal X-ray diffraction for C1 and C4. X-ray diffraction analysis of these complexes was focused on coordination sphere and supramolecular arrangements. In the two compounds, the molecules form dimers, being the most relevant intermolecular interactions the hydrogen bonds of the type C-H?O, C-H?π and π?π stacking interactions between the six-membered metallocycles. Electronic spectra of all Pd(II) complexes are dominated by charge transfer and intraligand bands at λ < 400 nm. DFT calculations showed that the HOMO is ligand-dominated, with the metal contribution being ~18% for all complexes. This suggests that the structural/electronic differences between the ligands do not influence significantly the participation of metal orbitals in HOMO. All the complexes exhibit dipole moments with the same direction, from the aldehyde moiety towards the imine bridge with C2 and C3 showing quite similar values, μ_(C2) = 5.49 and μ_(C3) = 5.54 D, whereas complexes C1 and C4 show slightly higher values: μ_(C1) = 5.79 and μ_(C4) = 6.17 D. The magnitude of bond lengths and angles predicted by DFT calculations are comparable to those determined by X-ray crystallography. The experimental vibrational frequencies of the Pd(II) complexes were correlated with the values estimated by DFT calculations. The good agreement between the experimental and theoretical vibrational data allowed the assignment of relevant IR bands to molecular vibration modes.
机译:通过光谱技术(UV-Vis和FTIR),密度泛函理论(DFT)计算,合成并表征了具有基于3-甲基水杨基醛的salen型配体和一组脂肪族二胺(C1至C4)的新型钯(II)配合物。 C1和C4的单晶X射线衍射。这些配合物的X射线衍射分析主要集中在配位球和超分子排列上。在这两种化合物中,分子形成二聚体,这是最相关的分子间相互作用,六元金属环之间的C-H2O,C-Hαπ和πππ型氢键堆积相互作用。所有Pd(II)配合物的电子光谱都以λ<400 nm处的电荷转移和配体内能带为主导。 DFT计算表明,HOMO是配体为主的,所有配合物的金属贡献约为18%。这表明配体之间的结构/电子差异不会显着影响HOMO中金属轨道的参与。从C2和C3的醛部分到亚胺桥,所有的络合物均表现出相同的偶极矩方向,μ_(C2)= 5.49和μ_(C3)= 5.54 D,而络合物C1和C4则表现出很小的方向。更高的值:μ_(C1)= 5.79和μ_(C4)= 6.17D。通过DFT计算预测的键长和键角的大小与X射线晶体学确定的值相当。 Pd(II)配合物的实验振动频率与DFT计算估计的值相关。实验和理论振动数据之间的良好一致性允许将相关的红外波段分配给分子振动模式。

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