4.5 Review

A Review on Ionic Liquid Gas Separation Membranes

期刊

MEMBRANES
卷 11, 期 2, 页码 -

出版社

MDPI
DOI: 10.3390/membranes11020097

关键词

gas separation; ionic liquid; polymerized ionic liquids; ionic liquid blends; ion gel membrane; transport properties

资金

  1. Czech Science Foundation [18-05484S, 19-14547S]
  2. Czech Ministry of Education, Youth and Sports [LTAUSA 19038]

向作者/读者索取更多资源

Ionic liquids have garnered attention for their unique properties and potential applications in various fields such as chemical synthesis, energy storage, and gas separation. Research on ionic liquid membranes has been extensive in the past fifteen years, exploring different materials and membrane types for gas separation processes. Ionic liquid membranes show promise as an energy-efficient alternative for complex separation challenges, indicating a potential role in sustainable future society.
Ionic liquids have attracted the attention of the industry and research community as versatile solvents with unique properties, such as ionic conductivity, low volatility, high solubility of gases and vapors, thermal stability, and the possibility to combine anions and cations to yield an almost endless list of different structures. These features open perspectives for numerous applications, such as the reaction medium for chemical synthesis, electrolytes for batteries, solvent for gas sorption processes, and also membranes for gas separation. In the search for better-performing membrane materials and membranes for gas and vapor separation, ionic liquids have been investigated extensively in the last decade and a half. This review gives a complete overview of the main developments in the field of ionic liquid membranes since their first introduction. It covers all different materials, membrane types, their preparation, pure and mixed gas transport properties, and examples of potential gas separation applications. Special systems will also be discussed, including facilitated transport membranes and mixed matrix membranes. The main strengths and weaknesses of the different membrane types will be discussed, subdividing them into supported ionic liquid membranes (SILMs), poly(ionic liquids) or polymerized ionic liquids (PILs), polymer/ionic liquid blends (physically or chemically cross-linked 'ion-gels'), and PIL/IL blends. Since membrane processes are advancing as an energy-efficient alternative to traditional separation processes, having shown promising results for complex new separation challenges like carbon capture as well, they may be the key to developing a more sustainable future society. In this light, this review presents the state-of-the-art of ionic liquid membranes, to analyze their potential in the gas separation processes of the future.

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