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封装于正丁基杯[4]芳烃中的吡啶1-氧化物分子动力学的固态核磁共振光谱研究。

Solid-State NMR Spectroscopy Study of Molecular Dynamics of Pyridine 1-Oxide Encapsulated in --Butylcalix[4]arene.

作者信息

Nobleman John

机构信息

Department of Chemistry and Biochemistry, The City College University of New York, 160 Convent Avenue, New York, New York 10031, United States.

出版信息

J Phys Chem A. 2020 Dec 17;124(50):10495-10506. doi: 10.1021/acs.jpca.0c07414. Epub 2020 Dec 8.

Abstract

The mixture of guests 25% pyridine 1-oxide (PNO) and 75% nitrobenzene (NB) encapsulated in a host cavity of --butylcalix[4]arene (p-tBC) is a suitable system for the study of intermolecular weak interactions, and the preferred orientation of the guest molecules within the host was derived. Variable temperature deuterium nuclear magnetic resonance line shape and spin-lattice relaxation studies were performed on three samples of 25% PNO as a guest (selectively and entirely deuterated) with 75% NB encapsulated in p-tBC as a host system. It is found that the PNO molecular motion supports the two-site jump model and is highly mobile throughout the temperature range from -130 to 20 °C. PNO reorients about its C molecular symmetry axis followed by reorientation around the compound's C axis of symmetry of a host. Calculation showed that besides precise molecular jumping, the guest also experiences the vibrational motion with a variation angle dispute about 15°. The correlation times for the molecular guest motion and two-dimensional exchange spectroscopy confirmed a fast exchange limit inside the cavity. These molecular dynamics follow an Arrhenius behavior motion from which the small activation energy is delivered that strongly suggests a relatively weak intermolecular interaction between the host and guest species. PNO has definite dipole orientational motion in the cavity where its aromatic covalent bond structure minimizes contact with the host --butyl groups. Experimentally found, PNO-d deuterons in the single crystal collapse at 55 and 125° at ambient temperature. The first splitting of 124 kHz belongs to D(D), the second splitting of 100 kHz belongs to D(D), and the last splitting of 52 kHz belongs to D of the ring of PNO inside the p-tBC.

摘要

封装在对叔丁基杯[4]芳烃(p-tBC)主体空腔中的25%吡啶1-氧化物(PNO)和75%硝基苯(NB)的混合物是研究分子间弱相互作用的合适体系,并得出了客体分子在主体内的优选取向。对以25% PNO作为客体(选择性全氘代)且75% NB封装在p-tBC中的三个样品进行了变温氘核磁共振线形和自旋晶格弛豫研究。发现PNO分子运动支持双位点跳跃模型,并且在-130至20℃的整个温度范围内具有高度流动性。PNO先围绕其C分子对称轴重新取向,随后围绕主体化合物的C对称轴重新取向。计算表明,除了精确的分子跳跃外,客体还经历振动运动,其变化角度约为15°。客体分子运动的相关时间和二维交换光谱证实了腔内的快速交换极限。这些分子动力学遵循阿仑尼乌斯行为运动,从中得出小的活化能,这强烈表明主体和客体物种之间的分子间相互作用相对较弱。PNO在腔内有明确的偶极取向运动,其芳香共价键结构使与主体对叔丁基基团的接触最小化。实验发现,室温下单晶中的PNO-d氘核在55和125°时坍塌。124 kHz的第一次分裂属于D(D),100 kHz的第二次分裂属于D(D),52 kHz的最后一次分裂属于p-tBC内PNO环的D。

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