Solid State and Structural Chemistry Unit, Indian Institute of Science, Bangalore 560012, India.
Faraday Discuss. 2017 Oct 13;203:201-212. doi: 10.1039/c7fd00084g.
The isomeric compounds, 4-bromo-2-chloro benzoic acid (4Br) and 2-bromo-4-chlorobenzoic acid (2Br), crystallize in entirely different space groups, P2/n and P1[combining macron] respectively. Both structures are stabilized by a strong O-HO hydrogen bonds generating a carboxylic acid dimer along with an unusual triangular halogen bonded motif in the former and a well-defined halogen bond in the latter. Charge density analysis establishes the nature of halogen bonds by bringing out significant changes in the packing features of the two structures as well as the quantification of the interaction energies involved in the formation of the motifs. Cocrystallization efforts lead to the formation of solid solutions of varied stoichiometric ratios among the two entirely different crystalline forms, a feature which is observed for the first time, and depends on the nature of the halogen bonds. Despite the significant variations in the charge density distribution in intermolecular space, the triangular motif, with two type II BrCl and ClBr and one type I BrBr contact in the structure of 4Br dictates the packing preferences in the solid solution as established by accurate single crystal diffraction studies supported by cognate powder diffraction analysis (PXRD) and differential scanning calorimetric (DSC) studies. A systematic study of the solid solution by varying the stoichiometric ratios establishes the hierarchy in halogen bonded motifs and consequently its directional influence to form the resultant supramolecular assembly.
两种同分异构化合物,4-溴-2-氯苯甲酸(4Br)和 2-溴-4-氯苯甲酸(2Br),分别结晶在完全不同的空间群中,即 P2/n 和 P1[combining macron]。这两个结构都通过强 O-HO 氢键稳定,生成羧酸二聚体,同时在前一种结构中存在不寻常的三角形卤素键模式,在后一种结构中存在明确的卤素键。电荷密度分析通过揭示两种结构的包装特征以及涉及形成图案的相互作用能的量化,确定了卤素键的性质。共结晶努力导致两种完全不同的晶体形式之间形成了不同化学计量比的固溶体,这是首次观察到的特征,并且取决于卤素键的性质。尽管在分子间空间的电荷密度分布存在显著差异,但在 4Br 结构中存在两个 II 型 BrCl 和 ClBr 以及一个 I 型 BrBr 接触的三角形模式决定了固溶体的包装偏好,这是通过精确的单晶衍射研究以及同源粉末衍射分析(PXRD)和差示扫描量热法(DSC)研究支持的。通过改变化学计量比对固溶体进行系统研究,确定了卤素键模式的层次结构,从而确定了其形成最终超分子组装的方向影响。