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A Cl− Hinge for Cyclen Macrocycles: Ionic Interactions and Tweezer–Like Complexes

机译:循环大环的Cl-铰链:离子相互作用和镊子样复合物

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摘要

The supramolecular networks derived from the complexation of polyazamacrocycles with halide anions constitute fundamental building blocks of a broad range of modern materials. This study provides insights into the conformational framework that supports the binding of protonated cyclen macrocyles (1,4,7,10-Tetraazacyclododecane) by chloride anions through NHδ+···Cl interactions. The isolated complex comprised of two cyclen hosts linked by one Cl anion is characterized by means of infrared action spectroscopy and ion mobility mass spectrometry, in combination with quantum chemical computations. The Cl anion is found to act as a hinge that bridges the protonated NH2+ moieties of the two macrocycles leading to a molecular tweezer configuration. Different types of conformations emerge, depending on whether the trimer adopts an open arrangement, with significant freedom for internal rotation of the cyclen moieties, or it locks in a folded conformation with intermolecular H-bonds between the two cyclen backbones. The ion mobility collision cross section supports that folded configurations of the complex are dominant under isolated conditions in the gas phase. The IRMPD spectroscopy experiments suggest that two qualitatively different families of folded conformations coexist at room temperature, featuring either peripheral or inner positions of the anion with respect to the macrocycle cavities, These findings should have implications in the growth of extended networks in the nanoscale and in sensing applications.
机译:由聚氮杂大环与卤素阴离子络合而得的超分子网络构成了现代材料的基础。这项研究提供了构象框架的见解,该构象框架支持氯化物阴离子通过NH δ+ ···Cl -<结合质子化的周期蛋白大环(1,4,7,10-四氮杂环十二烷) / sup>互动。分离的复合物由两个被一个Cl -阴离子连接的周期单元组成,其特征是通过红外作用光谱和离子迁移质谱结合量子化学计算进行表征。发现Cl -阴离子充当桥接质子化的 NH 2 + 部分导致分子钳结构。出现不同类型的构象,这取决于三聚体是采用开放的排列方式,具有较大的循环蛋白部分内部旋转自由度,还是通过两个循环蛋白骨架之间的分子间H键锁定为折叠的构象。离子迁移碰撞截面表明,在气相中隔离条件下,复合物的折叠构型占主导。 IRMPD光谱实验表明,在室温下,存在两个质量不同的折叠构象家族,其特征是阴离子相对于大环腔处于外围或内部位置。这些发现应该对纳米级和纳米级延伸网络的生长产生影响。传感应用。

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