Experimental Physics V, Center for Electronic Correlations and Magnetism, University of Augsburg, 86135, Augsburg, Germany.
Division for Biophysics and Molecular Physics, Silesian Center for Education and Interdisciplinary Research, 75 Pulku Piechoty 1A, 41-500, Chorzow, Poland.
Sci Rep. 2017 Aug 7;7(1):7463. doi: 10.1038/s41598-017-07982-3.
Ionic liquids are promising candidates for electrolytes in energy-storage systems. We demonstrate that mixing two ionic liquids allows to precisely tune their physical properties, like the dc conductivity. Moreover, these mixtures enable the gradual modification of the fragility parameter, which is believed to be a measure of the complexity of the energy landscape in supercooled liquids. The physical origin of this index is still under debate; therefore, mixing ionic liquids can provide further insights. From the chemical point of view, tuning ionic liquids via mixing is an easy and thus an economic way. For this study, we performed detailed investigations by broadband dielectric spectroscopy and differential scanning calorimetry on two mixing series of ionic liquids. One series combines an imidazole based with a pyridine based ionic liquid and the other two different anions in an imidazole based ionic liquid. The analysis of the glass-transition temperatures and the thorough evaluations of the measured dielectric permittivity and conductivity spectra reveal that the dynamics in mixtures of ionic liquids are well defined by the fractions of their parent compounds.
离子液体是储能系统中电解质的有前途的候选物。我们证明,混合两种离子液体可以精确地调节它们的物理性质,如直流电导率。此外,这些混合物可以逐渐改变脆性参数,据信该参数是过冷液体中能量景观复杂性的度量。该指数的物理起源仍在争论中;因此,混合离子液体可以提供更多的见解。从化学角度来看,通过混合来调整离子液体是一种简单且经济的方法。在这项研究中,我们通过宽带介电光谱和差示扫描量热法对两种离子液体混合系列进行了详细的研究。一个系列是将基于咪唑的离子液体与基于吡啶的离子液体混合,另一个系列是在基于咪唑的离子液体中混合两种不同的阴离子。玻璃化转变温度的分析以及对测量介电常数和电导率谱的深入评估表明,离子液体混合物中的动力学可以很好地由其母体化合物的分数来定义。