Faculty of Science, Department of Inorganic Chemistry, Charles University, Hlavova 2030, 128 00 Praha, Czech Republic.
Comenius University in Bratislava, Faculty of Natural Sciences, Department of Inorganic Chemistry, Ilkovičova 6, Mlynská Dolina, 842 15 Bratislava, Slovakia.
Inorg Chem. 2020 Dec 7;59(23):17162-17170. doi: 10.1021/acs.inorgchem.0c02430. Epub 2020 Nov 12.
A new mononuclear vanadium peroxido complex [VO(O)()()]·HO () exhibiting an unprecedented isomerism of its ligands was isolated from a two-component water-acetonitrile solvent system. DFT computations aimed at inspecting the stability of all possible isomers of complexes [VO(O)()()], where and are NN+ON, OO+ON, NN+OO, and ON+ON donor atom set ligands, suggested that every complex characterized so far was the one preferred thermodynamically. However, the particular case of complex [VO(O)()()] reported herein poses a notable exception to this rule, as this complex yielded single crystals of the isomer with total energy above the anticipated isomer, although both of these isomers could be observed concurrently in solution and also in the solid state. V NMR spectroscopy suggested these isomers to be present both in the crystallization solution and in the acetonitrile solution of . The coexistence of two isomers is a consequence of their small computed energy difference of 2.68 kJ mol, while the preferential crystallization favoring the unexpected isomer is likely to be triggered by solvent effects and the effects of different solubility and/or crystal packing. The coordination geometry of the unusual isomer also manifests itself in FT-IR and Raman spectra, which were corroborated with DFT computations targeted at band assignments.
从水-乙腈双组分溶剂体系中分离得到了一种新型单核钒过氧配合物[VO(O)()()],其配体具有前所未有的异构现象。为了检验配合物[VO(O)()()](其中 和 是 NN+ON、OO+ON、NN+OO 和 ON+ON 供体原子对配体)所有可能异构体的稳定性而进行的 DFT 计算表明,迄今为止所描述的每一种配合物都是热力学上优先的。然而,本文所报道的配合物[VO(O)()()]的特殊情况是对这一规则的显著例外,因为该配合物产生了总能量高于预期异构体的异构体的单晶,尽管这两种异构体都可以同时在溶液中和固态中观察到。V NMR 光谱表明,这些异构体既存在于结晶溶液中,也存在于 的乙腈溶液中。两种异构体共存是由于它们的计算能量差仅为 2.68 kJ mol,而有利于意外异构体优先结晶的原因可能是溶剂效应以及不同溶解度和/或晶体堆积的影响。不同寻常异构体的配位几何形状也在 FT-IR 和拉曼光谱中表现出来,这些光谱与针对能带分配的 DFT 计算相吻合。