Chemistry Department, Imperial College London, London, SW7 2AZ, UK.
Phys Chem Chem Phys. 2010 Feb 28;12(8):2018-29. doi: 10.1039/b922011a. Epub 2010 Jan 27.
In this paper we use ab initio theoretical methods in combination with experimental studies to investigate ion-pairs of the ionic liquid (IL) 1-methyl-3-pentamethyldisiloxymethylimidazolium chloride [(SiOSi)C(1)C(1)im]Cl, in order to deepen our understanding of the effects of functionalisation on an IL. In addition, we focus on the effect of the siloxy group on the viscosity. We establish that the ion-pairing energies of [(SiOSi)C(1)C(1)im]Cl are similar to those of 1-butyl-3-methylimidazolium chloride [C(4)C(1)im]Cl, because the anion interacts primarily with the imidazolium ring. A large range of ion-pair structural configurations is possible with different anion positions and chain orientations, contributing to a significant entropy. A H-bonded network forms, however the siloxy chain can shield the Cl(-) or key C-H sites thus introducing defects. Despite a significant increase in mass relative to C(4)C(1)im, the combined barriers to rotation within the substituent chain are substantially reduced in (SiOSi)C(1)C(1)im, this is primarily due to the flexibility of the siloxane linkage, and free rotation of the Si-Me methyl groups. The most important effect is a coupling of rotational motions within the chain which leads to dynamic inter-conversion of cation conformers, and facilitates movement of the anion around the cation, these will contribute to enhanced transport properties and a reduced viscosity. In addition, a longer charge arm is expected to enhance rotational and rotational-translational coupling in electric fields. Thus, for [(SiOSi)C(1)C(1)im]Cl ion-pair association is very similar to that of [C(4)C(1)im]Cl, but "dynamic" properties relating to torsional motion, a dynamic H-bonded network, and cation response to an external electric field are enhanced.
本文采用从头算理论方法结合实验研究,考察了离子液体 1-甲基-3-五甲基二硅氧甲基咪唑氯化物[(SiOSi)C(1)C(1)im]Cl 的离子对,以加深我们对功能化对离子液体影响的理解。此外,我们还关注了硅氧基对粘度的影响。我们确定[(SiOSi)C(1)C(1)im]Cl 的离子对能与 1-丁基-3-甲基咪唑氯化物[C(4)C(1)im]Cl 的离子对能相似,因为阴离子主要与咪唑环相互作用。由于不同的阴离子位置和链取向可能导致大量的离子对结构配置,从而导致显著的熵增加。尽管与C(4)C(1)im相比,质量显著增加,但(SiOSi)C(1)C(1)im中取代基链内的旋转结合势垒大大降低,这主要是由于硅氧烷键的灵活性和 Si-Me 甲基的自由旋转。最重要的影响是链内旋转运动的耦合,导致阳离子构象的动态相互转换,并促进阴离子在阳离子周围的移动,这将有助于增强输运性质和降低粘度。此外,较长的电荷臂有望增强电场中的旋转和旋转-平移耦合。因此,对于[(SiOSi)C(1)C(1)im]Cl 离子对的缔合与[C(4)C(1)im]Cl 非常相似,但与扭转运动、动态氢键网络以及阳离子对外电场的响应有关的“动态”性质得到增强。