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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Halogen Bonding Interactions between Brominated Ion Pairs and CO2 Molecules: Implications for Design of New and Efficient Ionic Liquids for CO2 Absorption
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Halogen Bonding Interactions between Brominated Ion Pairs and CO2 Molecules: Implications for Design of New and Efficient Ionic Liquids for CO2 Absorption

机译:溴离子对与CO2分子之间的卤素键相互作用:对设计用于吸收CO2的新型高效离子液体的意义

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In recent years, several novel halogenated liquids with characteristics of ionic liquids (ILs) were reported. To explore their performance in the absorption of CO2, in this work, quantum chemical calculations at DFT level have been carried out to investigate halogen bonding interactions between experimentally available brominated ion pairs and CO2 molecules. It is shown that, as compared to B3LYP, the functional PBE yields geometrical and energetic data more close to those of MP2 for cation—CO2 systems. The cation of brominated ILs under study can interact with CO2 molecules through Br···O interactions, possibly making an important impact on the physical solubility of CO2 in brominated ILs. The optimized geometries of the complexes of the ion pair with CO2 molecules are quite similar to those of the corresponding complexes of the cation, especially for the essentially linear C—Br··· O contacts; However, much weaker halogen bonds are predicted in the former systems, as indicated by the longer intermolecular distances and the smaller interaction energies. Charges derived from NBO analysis reveal the origin of the different optimized conformations and halogen bonding interactions for the CO2 molecule. Based on the electrostatic potential results, the substitution of hydrogen atoms with fluorine atoms constituting the cation is then applied to enhance halogen bond strength. The QTAIM analysis further validates the existence of halogen bonding interaction in all complexes. The topological properties at the halogen bond critical points indicate that the Br···O interactions in the complexes are basically electrostatic in nature and belong to conventional weak halogen bonds. This study would be helpful for designing new and effective ILs for CO2 physical absorption.
机译:近年来,已报道了几种具有离子液体(ILs)特性的新型卤化液体。为了探索它们在吸收CO2中的性能,在这项工作中,已经进行了DFT级的量子化学计算,以研究实验可得的溴化离子对与CO2分子之间的卤素键相互作用。结果表明,与B3LYP相比,对于阳离子-CO2系统,功能性PBE产生的几何和能量数据更接近于MP2。溴化ILs的阳离子可通过Br··O相互作用与CO2分子相互作用,可能对溴化ILs中CO2的物理溶解度产生重要影响。离子对与CO2分子的配合物的优化几何结构与阳离子相应配合物的几何结构非常相似,尤其是对于基本线性的C-Br··O接触而言。然而,如前所述,分子间距离越长,相互作用能越小,则卤素键的弱得多。来自NBO分析的电荷揭示了CO2分子不同优化构象和卤素键相互作用的起源。基于静电势的结果,然后应用氢原子替换为构成阳离子的氟原子以增强卤素键强度。 QTAIM分析进一步验证了所有配合物中卤素键相互作用的存在。卤素键临界点的拓扑性质表明,配合物中的Br··O相互作用基本上是静电性质的,属于常规的弱卤素键。这项研究将有助于设计新的和有效的二氧化碳物理吸收的IL。

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