Han Mengwei, Rogers Simon A, Espinosa-Marzal Rosa M
Department of Civil and Environmental Engineering at University of Illinois Urbana-Champaign, Urbana, Illinois 61801, United States.
Department of Chemical and Biomolecular Engineering, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, United States.
Langmuir. 2022 Mar 8;38(9):2961-2971. doi: 10.1021/acs.langmuir.1c03460. Epub 2022 Feb 27.
While the dynamic properties of ionic liquids (ILs) in nanoconfinement play a crucial role in the performance of IL-based electrochemical and mechanical devices, experimental work mostly falls short at reporting "solid-like" versus "liquid-like" behavior of confined ILs. The present work is the first to conduct frequency-sweep oscillatory-shear rheology on IL nanofilms, reconciling the solid-versus-liquid debate and revealing the importance of shear rate in the behavior. We disentangle and analyze the viscoelasticity of nanoconfined ILs and shed light on their relaxation mechanisms. Furthermore, a master curve describes the scaling of the dynamic behavior of four (non-hydrogen-bonding) ILs under nanoconfinement and reveals the role of the compressibility of the flow units.
虽然纳米限域中离子液体(ILs)的动态特性在基于离子液体的电化学和机械设备性能中起着关键作用,但实验工作大多未能报告受限离子液体的“类固体”与“类液体”行为。目前的工作首次对离子液体纳米薄膜进行频率扫描振荡剪切流变学研究,调和了关于固体与液体的争论,并揭示了剪切速率在该行为中的重要性。我们解开并分析了纳米限域离子液体的粘弹性,并阐明了它们的弛豫机制。此外,一条主曲线描述了四种(非氢键型)离子液体在纳米限域下动态行为的标度,并揭示了流动单元压缩性的作用。