含醚基团的胍离子液体的动力学、阳离子构象和旋转体

Daniel Rauber , Frederik Philippi , Bernd Morgenstern , Josef Zapp , Björn Kuttich , Tobias Kraus , Tom Welton , Rolf Hempelmann , Christopher W.M. Kay
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摘要

离子液体是一种具有广泛应用的现代材料,包括电化学装置、可持续资源开发和化学加工。扩展化学空间以包括新的离子类别允许阐明新的结构-性质关系并针对特定应用进行微调。我们制备了一套基于稀疏研究的具有2-乙氧基乙基侧链的五甲基胍阳离子与一系列常用阴离子的离子液体。将所得性质与具有缺乏醚官能化的戊基侧链的阳离子进行比较。我们测量了热转变和传输特性,以估计这类阳离子的性能和趋势。具有酰亚胺型阴离子的样品在环境温度下形成液体,并显示出与咪唑鎓或铵离子液体相当的良好传输性能。尽管动力学显著加速,但阳离子的醚官能化有利于结晶固体的形成。单晶结构分析、从头计算和可变温度核磁共振测量(VT-NMR)表明,取代的醚链和烷基链在固态和液态下的阳离子构象不同。虽然含醚阳离子采用紧凑的卷曲结构,但那些具有戊基侧链的阳离子是线性的。Eyring图显示,由于VT-NMR观察到的醚链的配位,卷曲构象伴随着围绕碳-氮键旋转的较高活化能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Dynamics, cation conformation and rotamers in guanidinium ionic liquids with ether groups

Ionic liquids are modern materials with a broad range of applications, including electrochemical devices, the exploitation of sustainable resources and chemical processing. Expanding the chemical space to include novel ion classes allows for the elucidation of novel structure-property relationships and fine tuning for specific applications. We prepared a set of ionic liquids based on the sparsely investigated pentamethyl guanidinium cation with a 2-ethoxy-ethyl side chain in combination with a series of frequently used anions. The resulting properties are compared to a cation with a pentyl side chain lacking ether functionalization. We measured the thermal transitions and transport properties to estimate the performance and trends of this cation class. The samples with imide-type anions form liquids at ambient temperature, and show good transport properties, comparable to imidazolium or ammonium ionic liquids. Despite the dynamics being significantly accelerated, ether functionalization of the cation favors the formation of crystalline solids. Single crystal structure analysis, ab initio calculations and variable temperature nuclear magnetic resonance measurements (VT-NMR) revealed that cation conformations for the ether- and alkyl-chain-substituted are different in both the solid and liquid states. While ether containing cations adopt compact, curled structures, those with pentyl side chains are linear. The Eyring plot revealed that the curled conformation is accompanied by a higher activation energy for rotation around the carbon-nitrogen bonds, due to the coordination of the ether chain as observed by VT-NMR.

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