Majhi Debashis, Dai Jing, Dvinskikh Sergey V
KTH Royal Institute of Technology, Stockholm, Sweden.
Stockholm University, Stockholm, Sweden.
Phys Chem Chem Phys. 2022 Oct 5;24(38):23532-23539. doi: 10.1039/d2cp03188d.
The hydrogen-bonding interaction is studied in imidazolium-based mesogenic ionic liquids in their isotropic, smectic, and solid phases and in a nanoconfined state by proton solid-state nuclear magnetic resonance (NMR). In the smectic phase, the more basic anions form stronger hydrogen bonds. A small decrease of H-bonding in the mesophase with respect to that in the isotropic phase is associated with the presence of a layered assembly with high orientational order and limited conformational freedom. Hydrogen bond strength is not sensitive to the cation structural modification as long as the aprotic nature of the material is preserved. The strong cation-anion hydrogen bonding observed in the smectic phases provides direct support for the presence of ionic sublayers which form in ionic liquid crystals regardless of the location and alignment of the charged group in the cation, particularly irrespective of whether the charged group occupies a terminal or central position in the cation structure. A comparison of the results obtained in isotropic, liquid-crystalline, and solid states shows that in the bulk materials the dynamic state of ions ranging from high reorientational and translational freedom to partial orientation and positional order to full immobilization, respectively, has no strong impact on the cation-anion hydrogen bond strength. On the other hand, nanoconfinement of ionic liquid crystals led to hydrogen bond disruption due to competing interactions of anions with a solid interface.
通过质子固态核磁共振(NMR)研究了基于咪唑鎓的介晶离子液体在其各向同性、近晶和固相以及纳米受限状态下的氢键相互作用。在近晶相中,碱性更强的阴离子形成更强的氢键。相对于各向同性相,中间相中的氢键略有降低,这与存在具有高取向有序性和有限构象自由度的层状组装有关。只要材料的非质子性质得以保留,氢键强度对阳离子结构修饰就不敏感。在近晶相中观察到的强阳离子 - 阴离子氢键为离子子层的存在提供了直接支持,这些离子子层在离子液晶中形成,而与阳离子中带电基团的位置和排列无关,特别是与带电基团在阳离子结构中占据末端还是中心位置无关。对在各向同性、液晶态和固态中获得的结果进行比较表明,在块状材料中,离子的动态状态分别从高重取向和平动自由度到部分取向和位置有序再到完全固定,对阳离子 - 阴离子氢键强度没有强烈影响。另一方面,离子液晶的纳米限域由于阴离子与固体界面的竞争相互作用而导致氢键破坏。