Comtet Jean, Niguès Antoine, Kaiser Vojtech, Coasne Benoit, Bocquet Lydéric, Siria Alessandro
Laboratoire de Physique Statistique, Ecole Normale Supérieure, UMR CNRS 8550, PSL Research University, 75005 Paris Cedex 05, France.
Laboratoire Interdisciplinaire de Physique, CNRS and Université Grenoble Alpes, UMR CNRS 5588, 38000 Grenoble, France.
Nat Mater. 2017 Jun;16(6):634-639. doi: 10.1038/nmat4880. Epub 2017 Mar 27.
Room-temperature ionic liquids (RTILs) are new materials with fundamental importance for energy storage and active lubrication. They are unusual liquids, which challenge the classical frameworks of electrolytes, whose behaviour at electrified interfaces remains elusive, with exotic responses relevant to their electrochemical activity. Using tuning-fork-based atomic force microscope nanorheological measurements, we explore here the properties of confined RTILs, unveiling a dramatic change of the RTIL towards a solid-like phase below a threshold thickness, pointing to capillary freezing in confinement. This threshold is related to the metallic nature of the confining materials, with more metallic surfaces facilitating freezing. This behaviour is interpreted in terms of the shift of the freezing transition, taking into account the influence of the electronic screening on RTIL wetting of the confining surfaces. Our findings provide fresh views on the properties of confined RTIL with implications for their properties inside nanoporous metallic structures, and suggests applications to tune nanoscale lubrication with phase-changing RTILs, by varying the nature and patterning of the substrate, and application of active polarization.
室温离子液体(RTILs)是对能量存储和主动润滑具有重要基础意义的新材料。它们是特殊的液体,对电解质的经典框架提出了挑战,其在带电界面处的行为仍然难以捉摸,具有与它们的电化学活性相关的奇异响应。在这里,我们使用基于音叉的原子力显微镜纳米流变学测量方法,探索受限RTILs的性质,揭示了RTILs在低于阈值厚度时向类固相的剧烈转变,表明在受限条件下发生了毛细管冻结。这个阈值与限制材料的金属性质有关,金属性更强的表面更容易促进冻结。考虑到电子屏蔽对受限表面RTILs润湿性的影响,这种行为是根据冻结转变的位移来解释的。我们的发现为受限RTILs的性质提供了新的观点,对它们在纳米多孔金属结构中的性质具有启示意义,并建议通过改变基底的性质和图案以及施加有源极化,将相变RTILs应用于调节纳米级润滑。