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气相中Cu+(MeOH)x(x = 1 - 6)的键解离能和平衡结构:金属离子溶剂化与氢键相互作用之间的竞争

Bond dissociation energies and equilibrium structures of Cu+(MeOH)x, x = 1-6, in the gas phase: competition between solvation of the metal ion and hydrogen-bonding interactions.

作者信息

Yang Z, Rannulu N S, Chu Y, Rodgers M T

机构信息

Department of Chemistry, Wayne State University, Detroit, Michigan 48202.

出版信息

J Phys Chem A. 2008 Jan 24;112(3):388-401. doi: 10.1021/jp076964v. Epub 2008 Jan 3.

DOI:10.1021/jp076964v
PMID:18171033
Abstract

The solvation of Cu+ by methanol (MeOH) was studied via examination of the kinetic energy dependence of the collision-induced dissociation of Cu+(MeOH)x complexes, where x = 1-6, with Xe in a guided ion beam tandem mass spectrometer. In all cases, the primary and lowest-energy dissociation channel observed is the endothermic loss of a single MeOH molecule. The primary cross section thresholds are interpreted to yield 0 and 298 K bond dissociation energies (BDEs) after accounting for the effects of multiple ion-neutral collisions, kinetic and internal energy distributions of the reactants, and lifetimes for dissociation. Density functional theory calculations at the B3LYP/6-31G* level are performed to obtain model structures, vibrational frequencies, and rotational constants for the Cu+(MeOH)x complexes and their dissociation products. The relative stabilities of various conformations and theoretical BDEs are determined from single-point energy calculations at the B3LYP/6-311+G(2d,2p) level of theory using B3LYP/6-31G*-optimized geometries. The relative stabilities of the various conformations of the Cu+(MeOH)x complexes and the trends in the sequential BDEs are explained in terms of stabilization gained from sd hybridization, hydrogen-bonding interactions, electron donor-acceptor natural bond orbital stabilizing interactions, and destabilization arising from ligand-ligand repulsion.

摘要

通过在导向离子束串联质谱仪中研究Cu+(MeOH)x络合物(其中x = 1 - 6)与Xe的碰撞诱导解离的动能依赖性,对Cu+在甲醇(MeOH)中的溶剂化作用进行了研究。在所有情况下,观察到的主要且能量最低的解离通道是单个MeOH分子的吸热损失。在考虑了多次离子 - 中性碰撞、反应物的动能和内能分布以及解离寿命的影响后,对主要截面阈值进行了解释,以得出0 K和298 K时的键解离能(BDE)。在B3LYP/6 - 31G水平上进行密度泛函理论计算,以获得Cu+(MeOH)x络合物及其解离产物的模型结构、振动频率和转动常数。使用B3LYP/6 - 31G优化的几何结构,在B3LYP/6 - 311+G(2d,2p)理论水平上通过单点能量计算确定了各种构象的相对稳定性和理论BDE。根据sd杂化、氢键相互作用、电子供体 - 受体自然键轨道稳定相互作用所获得的稳定性以及配体 - 配体排斥引起的去稳定作用,解释了Cu+(MeOH)x络合物各种构象的相对稳定性以及连续BDE的趋势。

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