Li Ailin, Tian Ziqi, Yan Tianying, Jiang De-en, Dai Sheng
Institute of New Energy Material Chemistry, College of Chemistry, Tianjin Key Laboratory of Metal- and Molecular-Based Material Chemistry, Collaborative Innovation Center of Chemical Science and Engineering (Tianjin), Nankai University , Tianjin 300071, China.
Department of Chemistry, University of California , Riverside, California 92521, United States.
J Phys Chem B. 2014 Dec 26;118(51):14880-7. doi: 10.1021/jp5100236. Epub 2014 Dec 16.
The structure and dynamics of a task-specific ionic liquid (TSIL), trihexyl(tetradecyl)phosphonium imidazolate, before and after absorbing CO(2) were studied with a molecular dynamics (MD) simulation. This particular ionic liquid is one of several newly discovered azole-based TSILs for equimolar CO(2) capture. Unlike other TSILs whose viscosity increases drastically upon reaction with CO(2), its viscosity decreases after CO(2) absorption. This unique behavior was confirmed in our MD simulation. We find that after CO(2) absorption the translational dynamics of the whole system is accelerated, accompanied by an accelerated rotational dynamics of the cations. Radial distribution function and spatial distribution function analyses show that the anions become asymmetric after reaction with CO(2), and this causes the imbalance of the interaction between the positive and negative regions of the ions. The interaction between the phosphorus atom of the cation and oxygen atoms of the carboxyl group on the anion is enhanced, while that between the phosphorus atom and the naked nitrogen atom of the anion is weakened. The ion-pair correlation functions further support that the weakened interaction leads to faster dissociation of cation-anion pairs, thereby causing an accelerated dynamics. Hence, the asymmetry of anions influences the dynamics of the system and affects the viscosity. This insight may help design better TSILs with decreased viscosity for CO(2) capture.
采用分子动力学(MD)模拟研究了特定任务离子液体(TSIL)——三己基(十四烷基)磷酸咪唑鎓在吸收CO₂前后的结构和动力学。这种特定的离子液体是几种新发现的用于等摩尔CO₂捕集的唑基TSIL之一。与其他与CO₂反应后粘度急剧增加的TSIL不同,它在吸收CO₂后粘度降低。我们的MD模拟证实了这种独特行为。我们发现,吸收CO₂后,整个系统的平移动力学加速,同时阳离子的旋转动力学也加速。径向分布函数和空间分布函数分析表明,阴离子与CO₂反应后变得不对称,这导致离子正负区域之间相互作用的不平衡。阳离子的磷原子与阴离子上羧基的氧原子之间的相互作用增强,而磷原子与阴离子裸氮原子之间的相互作用减弱。离子对相关函数进一步支持这种减弱的相互作用导致阳离子-阴离子对更快解离,从而导致动力学加速。因此,阴离子的不对称性影响系统的动力学并影响粘度。这一见解可能有助于设计出粘度更低的用于CO₂捕集的更好的TSIL。