College of Materials Science and Engineering, Hunan University , Changsha 410082, China.
Center for Green Chemistry and Catalysis, State Key Laboratory for Oxo Synthesis & Selective Oxidation, State Key Laboratory of Solid Lubrication, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences , No.18, Tianshui Middle Road, 730000 Lanzhou, China.
Chem Rev. 2017 May 24;117(10):6755-6833. doi: 10.1021/acs.chemrev.6b00509. Epub 2016 Dec 29.
Ionic liquids (ILs) have been widely investigated as novel solvents, electrolytes, and soft functional materials. Nevertheless, the widespread applications of ILs in most cases have been hampered by their liquid state. The confinement of ILs into nanoporous hosts is a simple but versatile strategy to overcome this problem. Nanoconfined ILs constitute a new class of composites with the intrinsic chemistries of ILs and the original functions of solid matrices. The interplay between these two components, particularly the confinement effect and the interactions between ILs and pore walls, further endows ILs with significantly distinct physicochemical properties in the restricted space compared to the corresponding bulk systems. The aim of this article is to provide a comprehensive review of nanoconfined ILs. After a brief introduction of bulk ILs, the synthetic strategies and investigation methods for nanoconfined ILs are documented. The local structure and physicochemical properties of ILs in diverse porous hosts are summarized in the next sections. The final section highlights the potential applications of nanoconfined ILs in diverse fields, including catalysis, gas capture and separation, ionogels, supercapacitors, carbonization, and lubrication. Further research directions and perspectives on this topic are also provided in the conclusion.
离子液体(ILs)已被广泛研究作为新型溶剂、电解质和软功能材料。然而,在大多数情况下,ILs 的广泛应用受到其液态的限制。将 ILs 限制在纳米多孔宿主中是克服这一问题的一种简单但通用的策略。纳米限制的 ILs 构成了一类具有 ILs 固有化学性质和固体基质原始功能的新型复合材料。这两个组件之间的相互作用,特别是限制效应和 ILs 与孔壁之间的相互作用,进一步赋予 ILs 在受限空间中与相应的体相系统相比具有显著不同的物理化学性质。本文的目的是对纳米限制的 ILs 进行全面综述。在简要介绍了体相 ILs 之后,记录了纳米限制的 ILs 的合成策略和研究方法。接下来的部分总结了 ILs 在各种多孔宿主中的局部结构和物理化学性质。最后一部分强调了纳米限制的 ILs 在催化、气体捕获和分离、离子凝胶、超级电容器、碳化和润滑等多个领域的潜在应用。在结论中还提供了关于该主题的进一步研究方向和观点。