Department of Chemical Engineering and Biotechnology, University of Cambridge, Philippa Fawcett Drive, Cambridge CB3 0AS, United Kingdom.
Department of Chemistry, Saarland University, Campus B2.2, 66123 Saarbrücken, Germany.
J Phys Chem B. 2022 Sep 22;126(37):7143-7158. doi: 10.1021/acs.jpcb.2c01372. Epub 2022 Sep 12.
Understanding the connection between the molecular structure of ionic liquids and their properties is of paramount importance for practical applications. However, this connection can only be established if a broad range of physicochemical properties on different length and time scales is already available. Even then, the interpretation of the results often remains ambiguous due to the natural limits of experimental approaches. Here we use fast-field cycling (FFC) to access both translational and rotational dynamics of ionic liquids. These combined with a comprehensive physicochemical characterization and MD simulations provide a toolkit to give insight into the mechanisms of molecular mechanics. The FFC results are consistent with the computer simulation and conventional physicochemical approaches. We show that curling of the side chains around the positively charged cationic core is essential for the properties of ether-functionalized ionic liquids, and we demonstrate that neither geometry nor polarity alone are sufficient to explain the macroscopic properties.
理解离子液体的分子结构与其性质之间的关系对于实际应用至关重要。然而,如果没有广泛的不同长度和时间尺度的物理化学性质,这种关系就无法建立。即使有了这些性质,由于实验方法的自然局限性,结果的解释往往仍然存在歧义。在这里,我们使用快速场循环(FFC)来研究离子液体的平移和旋转动力学。这些与全面的物理化学特性表征和 MD 模拟相结合,提供了一种深入了解分子力学机制的工具包。FFC 结果与计算机模拟和传统物理化学方法一致。我们表明,侧链围绕带正电荷的阳离子核心卷曲对于醚官能化离子液体的性质是必不可少的,并且我们证明,仅仅几何形状或极性都不足以解释宏观性质。