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An ab initio Study of the Structure and Energetics of Hydrogen Bonding in Ionic Liquids

机译:从头开始研究离子液体中氢键的结构和能量

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摘要

Unlike typical hydrogen-bonded networks such as water, hydrogen bonded ionic liquids display some unusual characteristics due to the complex interplay of electrostatics, polarization, and dispersion forces in the bulk. Protic ionic liquids in particular contain close-to traditional linear hydrogen bonds that define their physicochemical properties. This work investigates whether hydrogen bonded ionic liquids (HBILs) can be differentiated from aprotic ionic liquids with no linear hydrogen bonds using state-of-the-art ab initio calculations. This is achieved through geometry optimizations of a series of single ion pairs of HBILs in the gas phase and an implicit solvent. Using benchmark CCSD(T)/CBS calculations, the electrostatic and dispersion components of the interaction energy of these systems are compared with those of aprotic ionic liquids. The inclusion of the implicit solvent significantly influenced geometries of single ion pairs, with the gas phase shortening the hydrogen bond to reduce electrostatic interactions. HBILs were found to have stronger interactions by at least 10EtMeNH0 kJ mol−1 over aprotic ILs, clearly highlighting the electrostatic nature of hydrogen bonding. Geometric and energetic parameters were found to complement each other in determining the extent of hydrogen bonding present in these ionic liquids.
机译:与典型的氢键网络(例如水)不同,氢键离子液体由于静电,极化和主体中的分散力之间的复杂相互作用而显示出一些不同寻常的特性。质子离子液体特别包含接近传统的线性氢键,这些氢键定义了它们的物理化学性质。这项工作使用最新的从头算技术研究了是否可以将氢键离子液体(HBIL)与没有线性氢键的非质子离子液体区分开。这是通过对气相和隐性溶剂中一系列HBIL的单离子对进行几何优化来实现的。使用基准CCSD(T)/ CBS计算,将这些系统相互作用能的静电和分散成分与非质子离子液体的静电和分散成分进行比较。包含隐性溶剂会显着影响单个离子对的几何形状,气相会缩短氢键以减少静电相互作用。发现HBILs与非质子ILs的相互作用至少强于10EtMeNH0 kJ mol -1 ,这明显突出了氢键的静电性质。发现几何参数和高能参数在确定这些离子液体中存在的氢键结合程度时可以互相补充。

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