Gavrish Sergey P, Lampeka Yaroslaw D, Lightfoot Philip, Pritzkow Hans
L. V. Pisarzhevskii Institute of Physical Chemistry, National Academy of Sciences of Ukraine, Prospekt Nauki 31, Kyiv, 03028, Ukraine.
Dalton Trans. 2007 Nov 7(41):4708-14. doi: 10.1039/b708006a. Epub 2007 Aug 23.
A comparison of the molecular structure of related nickel(II) complexes of the open-chain and 13-membered macrocyclic oxamide-derived ligands NiL(1).4H2O and NiL(2).3H2O revealed that the formation of an additional 6-membered chelate ring in the complex results in rather small changes in the molecular structure of the ligands and the bite angles around the metal ion. Two deprotonated amide and two amine donors form an approximately square planar environment for the nickel(II) in both complexes and the only essential consequence of ligand cyclization is the contraction of the nickel-nitrogen distances by 0.012 and 0.021 A for the Ni-N(amide) and Ni-N(amine) bonds, respectively. The packing modes of NiL(1) and NiL(2) in the crystalline state are essentially different--lattice water molecules form isolated monomolecular 2D sheets separating and gluing the metallocomplex layers in the former complex, while they are included in the formation of hybrid metallocomplex-water layers connected by van der Waals interactions in the latter. Analysis of the 1H NMR spectra reveals that the solid state conformation of the macrocyclic complex is retained in aqueous solution.
对开链和13元大环草酰胺衍生配体NiL(1)·4H₂O和NiL(2)·3H₂O的相关镍(II)配合物的分子结构进行比较后发现,配合物中额外形成的六元螯合环导致配体的分子结构和金属离子周围的咬角变化相当小。在这两种配合物中,两个去质子化的酰胺和两个胺供体为镍(II)形成了近似平面正方形的环境,配体环化的唯一重要结果是镍-氮距离分别缩短了0.012 Å和0.021 Å,分别对应Ni-N(酰胺)键和Ni-N(胺)键。NiL(1)和NiL(2)在晶体状态下的堆积模式基本不同——晶格水分子在前一种配合物中形成孤立的单分子二维片层,分隔并黏合金属配合物层,而在后一种配合物中,它们参与形成通过范德华相互作用连接的混合金属配合物-水层。¹H NMR光谱分析表明,大环配合物的固态构象在水溶液中得以保留。