钋
离子液体
粘度
烟气
吸收(声学)
化学
流变学
化学工程
化学物理
热力学
材料科学
有机化学
催化作用
物理
工程类
复合材料
作者
Burcu Gurkan,Brett F. Goodrich,Elaine M. Mindrup,Lindsay E. Ficke,Marjorie Massel,Samuel Seo,Thomas P. Senftle,Hao Wu,M. F. Glaser,Jindal K. Shah,Edward J. Maginn,Joan F. Brennecke,William F. Schneider
摘要
The discovery of materials that combine selectively, controllably, and reversibly with CO 2 is a key challenge for realizing practical carbon capture from flue gas and other point sources. We report the design of ionic liquids (ILs) with properties tailored to this CO 2 separation problem. Atomistic simulations predict that suitably substituted aprotic heterocyclic anions, or “AHAs,” bind CO 2 with energies that can be controlled over a wide range suitable to gas separations. Further, unlike all previously known CO 2 -binding ILs, the AHA IL viscosity is predicted to be insensitive to CO 2 . Spectroscopic, temperature-dependent absorption, rheological, and calorimetric measurements on trihexyl(tetradecyl)-phosphonium 2-cyanopyrrolide ([P 66614 ][2-CNpyr]) show CO 2 uptakes close to prediction as well as insignificant changes in viscosity in the presence of CO 2 . A pyrazolide-based AHA IL behaves qualitatively similarly but with weaker binding energy. The results demonstrate the intrinsic design advantages of ILs as a platform for CO 2 separations.
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