Mao Xianwen, Brown Paul, Červinka Ctirad, Hazell Gavin, Li Hua, Ren Yinying, Chen Di, Atkin Rob, Eastoe Julian, Grillo Isabelle, Padua Agilio A H, Costa Gomes Margarida F, Hatton T Alan
Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, MA, USA.
Department of Chemistry and Chemical Biology, Cornell University, Ithaca, NY, USA.
Nat Mater. 2019 Dec;18(12):1350-1357. doi: 10.1038/s41563-019-0449-6. Epub 2019 Aug 12.
Driven by the potential applications of ionic liquids (ILs) in many emerging electrochemical technologies, recent research efforts have been directed at understanding the complex ion ordering in these systems, to uncover novel energy storage mechanisms at IL-electrode interfaces. Here, we discover that surface-active ILs (SAILs), which contain amphiphilic structures inducing self-assembly, exhibit enhanced charge storage performance at electrified surfaces. Unlike conventional non-amphiphilic ILs, for which ion distribution is dominated by Coulombic interactions, SAILs exhibit significant and competing van der Waals interactions owing to the non-polar surfactant tails, leading to unusual interfacial ion distributions. We reveal that, at an intermediate degree of electrode polarization, SAILs display optimum performance, because the low-charge-density alkyl tails are effectively excluded from the electrode surfaces, whereas the formation of non-polar domains along the surface suppresses undesired overscreening effects. This work represents a crucial step towards understanding the unique interfacial behaviour and electrochemical properties of amphiphilic liquid systems showing long-range ordering, and offers insights into the design principles for high-energy-density electrolytes based on spontaneous self-assembly behaviour.
受离子液体(ILs)在许多新兴电化学技术中的潜在应用驱动,最近的研究工作致力于理解这些系统中复杂的离子排序,以揭示IL-电极界面处的新型储能机制。在此,我们发现含有诱导自组装的两亲结构的表面活性离子液体(SAILs)在带电表面表现出增强的电荷存储性能。与传统的非两亲性离子液体不同,其离子分布由库仑相互作用主导,SAILs由于非极性表面活性剂尾部而表现出显著且相互竞争的范德华相互作用,导致异常的界面离子分布。我们揭示,在电极极化的中间程度下,SAILs表现出最佳性能,因为低电荷密度的烷基尾部被有效地排除在电极表面之外,而沿表面形成的非极性域抑制了不希望的过屏蔽效应。这项工作是理解显示长程有序的两亲性液体系统独特界面行为和电化学性质的关键一步,并为基于自发自组装行为的高能量密度电解质的设计原则提供了见解。