Barwiolek Magdalena, Jankowska Dominika, Chorobinski Mateusz, Kaczmarek-Kędziera Anna, Łakomska Iwona, Wojtulewski Slawomir, Muzioł Tadeusz M
Faculty of Chemistry, Nicolaus Copernicus University in Torun 87-100 Torun Poland
Institute of Mathematics and Physics, UTP University of Science and Technology 85-796 Bydgoszcz Poland
RSC Adv. 2021 Jul 13;11(40):24515-24525. doi: 10.1039/d1ra03096e.
Two Zn(ii) complexes, K1 and K2, obtained from the template reaction of zinc(ii) acetate dihydrate with -phenylenediamine and 2-hydroxy-5-methylisophthalaldehyde (K1) or 2-hydroxy-5--butyl-1,3-benzenedicarboxaldehyde (K2), respectively, were characterized by X-ray crystallography, spectroscopic (UV-vis, fluorescence and IR), and thermal methods. In the complex [Zn(MeO)(OH)(L1)]·2HO K1, there are two binding sites in the macrocyclic ligand and they are occupied by zinc(ii) cations found in slightly distorted square pyramidal environment. The zinc(ii) cations are connected by slightly asymmetric oxo bridges with a Zn1-O14-Zn1[-, - + 1, - + 1] angle of 104.8(2)°. In the dimer [Zn(CHCOO)(L2)]·2EtOH K2, there are two crystallographically independent binding sites both occupied by zinc(ii) cations. There is a significant difference between both complexes, since in K1 only one site is independent and the second is occupied due to the application of symmetry rules, and the geometry of both sites is identical. Thin layers of the obtained Zn(ii) complexes were deposited on Si(111) by the spin coating method and studied by scanning electron microscopy (SEM/EDS), atomic force microscopy (AFM), fluorescence spectroscopy and ellipsometry. In the non-absorbing range, the value of the refractive index exhibits normal dispersion between 1.8 and 2.1 for K1_1-K1_3; and between 2.3 and 2.6 for the K2 series of samples established for long wavelengths (longer than 500 nm). The Zn(ii) complexes and their thin layers exhibited fluorescence between 534-573 nm and 495-572 nm for the compounds and the layers, respectively. The highest quantum yield of fluorescence was achieved for K2 in benzene and in the solid state = 0.78 and 0.58, respectively. The influence of the solvent polarity on the fluorescence properties of the obtained complexes was studied. Additionally, DFT calculations were performed to explain the structures and electronic spectral properties of the complexes.
通过二水合醋酸锌与对苯二胺和2-羟基-5-甲基间苯二甲醛(K1)或2-羟基-5-丁基-1,3-苯二甲醛(K2)的模板反应分别得到了两种锌(II)配合物K1和K2,通过X射线晶体学、光谱学(紫外可见光谱、荧光光谱和红外光谱)以及热分析方法对其进行了表征。在配合物[Zn(MeO)(OH)(L1)]·2H₂O(K1)中,大环配体中有两个结合位点,它们被处于轻微扭曲的四方锥环境中的锌(II)阳离子占据。锌(II)阳离子通过略微不对称的氧桥相连,Zn1 - O14 - Zn1[ - , - + 1, - + 1]角为104.8(2)°。在二聚体[Zn(CH₃COO)(L2)]·2EtOH(K2)中,有两个晶体学独立的结合位点,均被锌(II)阳离子占据。两种配合物之间存在显著差异,因为在K1中只有一个位点是独立的,另一个位点是由于应用对称规则而被占据,且两个位点的几何结构相同。通过旋涂法将所得锌(II)配合物的薄膜沉积在Si(111)上,并通过扫描电子显微镜(SEM/EDS)、原子力显微镜(AFM)、荧光光谱和椭偏仪进行研究。在非吸收范围内,对于K1_1 - K1_3,折射率值在1.8至2.1之间呈现正常色散;对于K2系列样品,在长波长(大于500 nm)时,折射率值在2.3至2.6之间。锌(II)配合物及其薄膜分别在534 - 573 nm和495 - 572 nm之间表现出荧光。对于K2,在苯中以及固态下荧光量子产率最高,分别为0.78和0.58。研究了溶剂极性对所得配合物荧光性质的影响。此外,进行了密度泛函理论(DFT)计算以解释配合物的结构和电子光谱性质。