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Investigation of Steric Influences on Hydrogen-Bonding Motifs in Cyclic Ureas by Using X-Ray, Neutron, and Computational Methods

机译:利用X射线,中子和计算方法研究立体化学对循环尿素中氢键基序的影响

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摘要

A series of urea-derived heterocycles, 5N-substituted hexahydro-1,3,5-triazin-2-ones, has been prepared and their structures have been determined for the first time. This family of compounds only differ in their substituent at the 5-position (which is derived from the corresponding primary amine), that is, methyl (1), ethyl (2), isopropyl (3), tert-butyl (4), benzyl (5), N,N-(diethyl)ethylamine (6), and 2-hydroxyethyl (7). The common heterocyclic core of these molecules is a cyclic urea, which has the potential to form a hydrogen-bonding tape motif that consists of self-associative R_2~2(8) dimers. The results from X-ray crystallography and, where possible, Laue neutron crystallography show that the hydrogen-bonding motifs that are observed and the planarity of the hydrogen bonds appear to depend on the steric hindrance at the α-carbon atom of the N substituent. With the less-hindered substituents, methyl and ethyl, the anticipated tape motif is observed. When additional methyl groups are added onto the α-carbon atom, as in the isopropyl and tert-butyl derivatives, a different 2D hydrogen-bonding motif is observed. Despite the bulkiness of the substituents, the benzyl and N,N-(diethyl)ethylamine derivatives have methylene units at the α-carbon atom and, therefore, display the tape motif. The introduction of a competing hydrogen-bond donor/acceptor in the 2-hydroxyethyl derivative disrupts the tape motif, with a hydroxy group interrupting the N-H…O=C interactions. The geometry around the hydrogen-bearing nitrogen atoms, whether planar or non-planar, has been confirmed for compounds 2 and 5 by using Laue neutron diffraction and rationalized by using computational methods, thus demonstrating that distortion of O-C-N-H torsion angles occurs to maintain almost-linear hydrogen-bonding interactions.
机译:制备了一系列脲衍生的杂环,即5N-取代的六氢-1,3,5-三嗪-2-酮,并首次确定了它们的结构。这组化合物的不同之处仅在于它们在5位上的取代基不同(其衍生自相应的伯胺),即甲基(1),乙基(2),异丙基(3),叔丁基(4),苄基(5),N,N-(二乙基)乙胺(6)和2-羟乙基(7)。这些分子的常见杂环核心是环状脲,它有可能形成由自缔合的R_2〜2(8)二聚体组成的氢键带基序。 X射线晶体学和劳埃中子晶体学(可能的话)的结果表明,观察到的氢键基序和氢键的平面性似乎取决于N取代基的α-碳原子上的空间位阻。使用较少受阻碍的取代基甲基和乙基,可以观察到预期的带基序。当在异丙基和叔丁基衍生物中将其他甲基添加到α-碳原子上时,会观察到不同的2D氢键基序。尽管取代基的体积很大,但是苄基和N,N-(二乙基)乙胺衍生物在α-碳原子上具有亚甲基单元,因此显示出带基序。在2-羟乙基衍生物中引入竞争性氢键供体/受体破坏了带基序,其中羟基中断了N-H…O = C相互作用。化合物2和5已通过使用劳厄中子衍射法证实了含氢氮原子周围的几何结构,无论是平面的还是非平面的,并通过计算方法进行了合理化,从而证明了OCNH扭转角的发生是为了保持几乎-线性氢键相互作用。

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