首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Influence of Substituents on Cation-π Interactions. 2. Absolute Binding Energies of Alkali Metal Cation-Fluorobenzene Complexes Determined by Threshold Collision-Induced Dissociation and Theoretical Studies
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Influence of Substituents on Cation-π Interactions. 2. Absolute Binding Energies of Alkali Metal Cation-Fluorobenzene Complexes Determined by Threshold Collision-Induced Dissociation and Theoretical Studies

机译:取代基对阳离子-π相互作用的影响。 2.阈值碰撞诱导解离和理论研究确定的碱金属阳离子-氟苯配合物的绝对结合能

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Threshold collision-induced dissociation of M~+(C_6H_5F) and M~+(C_6H_5F)_2 with Xe is studied by guided ion beam mass spectrometry. M~+ include the following alkali metal ions: Li~+, Na~+, K~+, Rb~+, and Cs~+. In all cases, the primary and lowest energy dissociation channel observed is endothermic loss of an intact fluorobenzene ligand. Sequential dissociation of a second fluorobenzene ligand is observed at elevated energies in the bis complexes. Minor production of ligand exchange products, M~+Xe and M~+(C_6H_5F)Xe, is also observed. The cross section thresholds for the primary dissociation channel are interpreted to yield 0 and 298 K bond dissociation energies for (C_6H_5F)_(x-1)M~+-C_6H_5F, x = 1 and 2, after accounting for the effects of multiple ion-neutral collisions, the kinetic and internal energies of the reactants, and dissociation lifetimes. Density functional theory calculations at the B3LYP/6-31G~* level of theory are used to determine the structures of these complexes and provide molecular constants necessary for the thermodynamic analysis of the experimental data. Theoretical binding energies are determined from single-point energy calculations at the MP2(full)/6-311+G(2d,2p) level using the B3LYP/6-31G~* geometries. Zero-point energy and basis-set superposition error corrections are also included. The agreement between theory and experiment is very good when full electron correlation is included (for Li~+, Na~+, and K~+), except for the Li~+(C_6H_5F) complex, and reasonable when effective core potentials are used (for Rb~+ and Cs~+). The trends in M~+(C_6H_5F)_x binding energies are explained in terms of varying magnitudes of electrostatic interactions and ligand-ligand repulsion in the complexes. Comparisons are also made to previous theoretical and experimental BDEs of M~+(C_6H_6)_x and M~+(C_6H_5CH_3)_x to examine the influence of the fluoro substituent on the binding and the factors that control the strength of cation-π interactions.
机译:通过引导离子束质谱研究了M〜+(C_6H_5F)和M〜+(C_6H_5F)_2阈值碰撞诱导的解离。 M +包括以下碱金属离子:Li +,Na +,K +,Rb +和Cs +。在所有情况下,观察到的主要和最低的能量解离通道是完整氟苯配体的吸热损失。在双配合物中能量升高时,观察到第二个氟苯配体的顺序解离。还观察到配体交换产物M〜+ Xe和M〜+(C_6H_5F)Xe的少量生成。解释了多个离子的影响后,主解离通道的横截面阈值被解释为对于(C_6H_5F)_(x-1)M〜+ -C_6H_5F(x = 1和2)产生0和298 K键解离能-中性碰撞,反应物的动能和内能以及离解寿命。在B3LYP / 6-31G〜*理论水平上的密度泛函理论计算用于确定这些配合物的结构,并提供对实验数据进行热力学分析所需的分子常数。理论结合能是使用B3LYP / 6-31G〜*几何结构从MP2(full)/ 6-311 + G(2d,2p)级别的单点能量计算确定的。还包括零点能量和基集叠加误差校正。当包括Li〜+(C_6H_5F)络合物时,当包含全电子相关性时(对于Li〜+,Na〜+和K〜+),理论与实验之间的一致性很好。 (对于Rb〜+和Cs〜+)。 M〜+(C_6H_5F)_x结合能的变化趋势是通过复合物中静电相互作用和配体-配体排斥的变化幅度来解释的。还与先前的M〜+(C_6H_6)_x和M〜+(C_6H_5CH_3)_x的理论和实验BDE进行了比较,以检验氟取代基对结合的影响以及控制阳离子-π相互作用强度的因素。

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