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首页> 外文期刊>ACS applied materials & interfaces >Influence of Water on Structure, Dynamics, and Electrostatics of Hydrophilic and Hydrophobic Ionic Liquids in Charged and Hydrophilic Confinement between Mica Surfaces
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Influence of Water on Structure, Dynamics, and Electrostatics of Hydrophilic and Hydrophobic Ionic Liquids in Charged and Hydrophilic Confinement between Mica Surfaces

机译:水对云母表面充电和亲水监控中亲水和疏水离子液体结构,动力学和静电的影响

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Water is ubiquitous in the environment and is the origin for operational constraints in ionic-liquid based electrolytes for supercapacitors. In this study, the influence of water on the interfacial behavior of hydrophilic (1-ethyl-3-methylimidazolium ethylsulfate, abbr. [EMIM][EtSO4]) and hydrophobic (1-ethyl-3-methylimidazolium tris(pentafluoroethyl)trifluorophosphate and 1-ethyl-3-methylimidazolium bis(trifluoromethylsulfonyl)imide, abbr. [EMIM][FAP] and [EMIM][TFSI], respectively) ionic liquids (ILs) confined between mica surfaces was investigated at separations precisely modulated by a surface force apparatus and at controlled relative humidity between 0% and 50% RH. Diffusion experiments revealed that water spontaneously invades the nanoconfined ILs above a certain humidity threshold and that the confined hydrophobic IL is completely replaced by water at sufficiently high environmental humidity (similar to 45% here) as a result of surface-induced phase separation. This behavior is expected to be universal for other ILs that are not fully miscible with water when they are confined in hydrophilic nanopores of a few nanometers in width. The effect of environmental humidity on interfacial structure, dynamics, and electrostatics was studied via dynamic force measurements. In the dry state, several layers of ions are immobilized on the mica surface, and the effective viscosity increases by up to 2 orders of magnitude with a decrease in film thickness from similar to 10 to similar to 3 nm. Based on recent work, it is proposed that nanoconfinement enhances the anion-cation association in highly concentrated electrolytes, thereby justifying the loss of fluidity of the ILs. When phase separation is excluded, water is intercalated in the layered structure of the three ILs, and it leads to a change of the layer thickness compared to the dry state. Furthermore, our results reveal that interfacial water prevents ions from being immobilized on the surface and facilitates the outflow of both hydrophilic and hydrophobic ILs by reducing their effective viscosity in the order [EMIM][FAP] < [EMIM][TFSI] < [EMIM][EtSO4]. The underlying mechanisms are evaluated by considering the roles of water in enhancing ion dissociation through screening of electrostatic interactions and solvation of the selected ILs to different extents. The discussed experimental observations support the recent discoveries made by molecular dynamic simulations and neutron scattering studies that using hydrophilic ILs coupled with water as cosolvent could lead to the enhanced power density of IL-based supercapacitors, and therefore, that water-in-(hydrophilic) ILs is a direction worth exploring as electrolytes for supercapacitors.
机译:在环境中,水是普遍存在的,是超级电容器离子 - 液体基电解质的操作约束的起源。在这项研究中,水对亲水性(1-乙基-3-甲基咪唑乙酯,ABBR,ABBR。[eMIM] [ETSO4])和疏水(1-乙基-3-甲基咪唑鎓三(五氟乙基)三氟磷酸盐和1 -3-甲基 - 甲基咪唑鎓双(三氟甲基磺酰基)酰亚胺,ABBR。[emim] [FAP]和[emim] [TFSI],分别在通过表面力装置精确调节的分离时研究了云母表面之间的离子液体(ILS)在受控相对湿度下0%和50%RH之间。扩散实验表明,由于表面诱导的相分离的结果,水自发地侵入了一定湿度阈值以上的纳米污染的ILs以上的纳米醌IL。当它们宽度为几纳米的亲水纳米孔时,这种行为预计将是对水不完全混溶的其他IL的普遍性。通过动力测量研究了环境湿度对界面结构,动力学和静电学的影响。在干燥状态下,将几层离子固定在云母表面上,并且有效粘度增加到2个峰值增加,膜厚度的降低到类似于10至类似于3nm。基于最近的工作,提出纳米核精制在高度浓缩电解质中增强阴离子阳离子关联,从而证明了ILS的流动性丧失。当排除相分离时,水在三个IL的层状结构中插入,并且与干燥状态相比,它导致层厚的变化。此外,我们的结果表明,界面水防止离子固定在表面上,并通过在顺序中降低其有效粘度来促进亲水和疏水性ILs的流出[emim] [emim] [emim] <[emim] <[emim] ] [etso4]。通过筛选静电相互作用和所选IL的静电相互作用和所选IL的溶液来评估潜在的机制来评估潜水方面的作用。所讨论的实验观察支持最近的分子动态模拟和中子散射研究所取得的发现,所述中子散射研究的使用与水相结合的水亲水IL可以导致IL的超级电容器的增强功率密度,因此,水 - (亲水) ILS是一个值得探索超级电容器的电解质的方向。

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