Key Laboratory of Biomass Chemical Engineering of Ministry of Education, Department of Chemical and Biological Engineering, Zhejiang University , Hangzhou 310027, China.
J Phys Chem B. 2014 Jan 30;118(4):1071-9. doi: 10.1021/jp4096503. Epub 2014 Jan 14.
Ionic liquids (ILs) with relatively strong basicity often show impressive performance in chemical processes, so it is important to enhance the basicity of ILs by molecular design. Here, we proposed two effective ways to enhance the basicity of ILs: by weakening the cation-anion interaction strength and by employing the anion-tethered strategy. Notably, two quantum-chemical parameters, the most negative surface electrostatic potential and the lowest surface average local ionization energy, were adopted as powerful tools to demonstrate the electrostatic and covalent aspects of basicity, respectively, at the microscopic level. It was shown that, for the ILs with the same anion (acetate or trifluoroacetate), the basicity of the ILs could be enhanced when the cation-anion interaction strength was weakened. For the acetate anion-based ILs, the hydrogen-bonding basicity scale (β) increased by 29% when the cation changed from 1-butyl-3-methylimidazolium ([Bmim]) to tetrabutylphosphonium ([P4444]), achieving one of the highest reported β values for ILs. Moreover, it was also demonstrated that, when an amine group was tethered to the anion of the IL, its basicity was stronger than when it was tethered to the cation. These results are highly instructive for designing ILs with strong basicity and for improving the efficiency of IL-based processes, such as CO2 capture, SO2 and acetylene absorption, dissolution of cellulose, extraction of bioactive compounds, and so on.
具有相对较强碱性的离子液体 (ILs) 在化学反应过程中表现出令人印象深刻的性能,因此通过分子设计来提高 ILs 的碱性非常重要。在这里,我们提出了两种增强 ILs 碱性的有效方法:削弱阳离子-阴离子相互作用强度和采用阴离子束缚策略。值得注意的是,我们采用了两个量子化学参数,即最负表面静电势和最低表面平均局部电离能,作为强大的工具,分别从微观层面上展示了碱性的静电和共价方面。结果表明,对于具有相同阴离子(乙酸盐或三氟乙酸盐)的 ILs,当阳离子-阴离子相互作用强度减弱时,ILs 的碱性可以增强。对于基于乙酸盐阴离子的 ILs,当阳离子从 1-丁基-3-甲基咪唑鎓 ([Bmim]) 变为四丁基膦 ([P4444]) 时,氢键碱性尺度 (β) 增加了 29%,达到了报道的 ILs 中最高的 β 值之一。此外,还证明了当胺基与 IL 的阴离子键合时,其碱性比与阳离子键合时更强。这些结果对于设计具有强碱性的 ILs 和提高基于 IL 的工艺的效率非常有指导意义,例如 CO2 捕获、SO2 和乙炔吸收、纤维素溶解、生物活性化合物提取等。