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计算研究新型杯[4]吡咯离子对受体。

Computational investigation of a new ion-pair receptor for calix[4]pyrrole.

机构信息

Key Laboratory of Environmentally Friendly Chemistry and Applications of Ministry of Education, College of Chemistry, Xiangtan University, Xiangtan, Hunan, People's Republic of China.

出版信息

J Mol Model. 2012 Jun;18(6):2291-9. doi: 10.1007/s00894-011-1243-9. Epub 2011 Oct 1.

Abstract

Theoretical studies of a new ion-pair receptor, meso-octamethylcalix[4]pyrrole (OMCP), and its interactions with the halide anions F(-), Cl(-), and Br(-) and the cesium halides CsF, CsCl, and CsBr have been performed. Geometries, binding energies, and binding enthalpies were evaluated with the restricted hybrid Becke three-parameter exchange functional (B3LYP) method using the 6-31+G(d) basis set and relativistic effective core potentials. The optimized geometric structures were used to perform natural bond orbital (NBO) analysis. The two typical types of hydrogen bonds, N-H…X(-) and C-H…X(-), were investigated. The results indicate that hydrogen bonding interactions are dominant, and that the halide anions (F(-), Cl(-), and Br(-)) offer lone pair electrons to the σ*(N-H) or σ*(C-H) antibonding orbitals of OMCP. In addition, electrostatic interactions between the lone pair electrons of the halide anion and the LP* orbitals of Cs(+) as well as cation-π interactions between the metal ion and π-orbitals of the pyrrole rings have important roles to play in the Cs(+)•OMCP•X(-) complexes. The current study further demonstrates that this easy-to-make OMCP host compound functions as not only an anion receptor but also an ion-pair receptor.

摘要

新型离子对受体间 - 辛基 - 杯[4]吡咯(OMCP)及其与卤化物阴离子 F(-),Cl(-)和 Br(-)以及铯卤化物 CsF,CsCl 和 CsBr 的相互作用的理论研究已经完成。使用受限混合 Becke 三参数交换函数(B3LYP)方法,采用 6-31+G(d)基组和相对论有效核势,评估了几何形状,结合能和结合焓。优化的几何结构用于进行自然键轨道(NBO)分析。研究了两种典型的氢键,N-H…X(-)和 C-H…X(-)。结果表明,氢键相互作用占主导地位,卤化物阴离子(F(-),Cl(-)和 Br(-))提供孤对电子给 OMCP 的 σ*(N-H)或 σ*(C-H)反键轨道。此外,卤化物阴离子的孤对电子与 Cs(+)的 LP*轨道之间的静电相互作用以及金属离子与吡咯环的π轨道之间的阳离子-π相互作用在 Cs(+)•OMCP•X(-)配合物中起着重要作用。本研究进一步表明,这种易于制备的 OMCP 主体化合物不仅是阴离子受体,而且还是离子对受体。

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