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Charge Transport and Dynamics in Imidazolium Chloroaluminate Ionic Liquids

机译:氯铝酸铵离子液体中的电荷运输和动力学

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Imidazolium based chloroaluminates were the first widely studied room-temperature ionic liquids. However, work in these systems has waned over the past 25 years in favor of ionic liquids with less reactive anions. Researchers are beginning to rediscover chloroaluminates because they possess some very advantageous properties that hold significant promise for applications such as energy storage, electrodeposition, and chemical synthesis. Chloroaluminates are not simple mixtures of a single cation with a single anion. It is more appropriate to think of these systems as binary mixtures of two ionic liquids which share the same cation. The binary nature of the chloroaluimates leads to highly tunable physical and chemical properties including liquidus range, electrochemical stability window, dc ionic conductivity, zero-shear viscosity, and static dielectric permittivity. However, the binary nature also leads to significant experimental challenges with respect to characterization of the structure and anion speciation in the chloroaluminates. The majority of work characterizing the imidazolium based chloroaluminate was conducted more than 25 years ago and focused on physical property measurements across limited compositions and/or narrow temperature/frequency ranges. The data from these early studies revealed important aspects of chloroaluminate physical properties; however, due to their limited scope they failed to make significant progress in understanding underlying structure-property relationships which are critical to realizing the full potential of chloroaluminate ionic liquids as electrolyte systems. Our current work seeks to reexamine imidazolium chloroaluminate ionic liquids leveraging the improved experimental tools and capabilities available today. In this presentation we will discuss our initial studies of imidazolium chloroaluminate ionic liquids using broadband dielectric spectroscopy, oscillatory shear rheology, and Raman spectroscopy. We will present preliminary work on the impact of changes in cation structure and ionic liquid composition on anion speciation, transport properties, and dynamics.
机译:基于咪唑鎓的氯铝酸铝是第一个众所周地研究的室温离子液体。然而,在过去的25年里,这些系统的工作已经在过去25年中有利于离子液体具有较少的反应性阴离子。研究人员开始重新发现氯铝,因为它们具有一些非常有利的特性,可对储能,电沉积和化学合成等应用具有重要的承诺。氯铝酸盐并不是单一阴离子的单阳离子的简单混合物。将这些系统视为两种离子液体的二元混合物更合适,其具有共享相同阳离子的离子液体。氯碱酸盐的二进制性质导致高度可调的物理和化学性质,包括液相率范围,电化学稳定性窗口,直流离子电导率,零剪切粘度和静电介电常数。然而,二进制性也导致关于氯铝酸盐的结构和阴离子态的表征的显着实验挑战。表征基于Imidazolium基氯铝酸氢铵的大多数作品在25年前进行,并专注于有限组合物和/或窄温度/频率范围的物理性质测量。来自这些早期研究的数据揭示了氯铝酸盐物理性质的重要方面;然而,由于其范围有限,他们未能在理解潜在的结构性质关系方面取得重大进展,这对于实现氯铝酸氯铝液体作为电解质系统的全部潜力至关重要。我们目前的工作寻求重新抑制咪唑鎓氯铝酸铝离子液体,利用了今天可用的改进的实验工具和能力。在本篇文章中,我们将讨论使用宽带介电光谱,振荡剪切流变学和拉曼光谱法对咪唑氯铝离子液体的初步研究。我们将对阳离子结构和离子液体组合物变化对阴离子,运输性能和动力学的影响提出初步工作。

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