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Pioneering Use of Ionic Liquid‐Based Aqueous Biphasic Systems as Membrane‐Free Batteries

机译:离子液体基双相水性系统作为无膜电池的开拓性应用

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摘要

Aqueous biphasic systems (ABS) formed by water, ionic liquids (ILs), and salts, in which the two phases are water rich, are demonstrated here to act as potential membrane‐free batteries. This concept is feasible due to the selective enrichment of redox organic molecules in each aqueous phase of ABS, which spontaneously form two liquid‐phases above given concentrations of salt and IL. Therefore, the required separation of electrolytes in the battery is not driven by an expensive membrane that hampers mass transfer, but instead, by the intrinsic immiscibility of the two liquid phases. Moreover, the crosscontamination typically occurring through the ineffective membranes is determined by the partition coefficients of the active molecules between the two phases. The phase diagrams of a series of IL‐based ABS are characterized, the partition coefficients of several redox organic molecules are determined, and the electrochemistry of these redox‐active immiscible phases is evaluated, allowing appraisal of the battery performance. Several redox ABS that may be used in total aqueous membrane‐free batteries with theoretical battery voltages as high as 1.6 V are identified. The viability of a membrane‐free battery composed of an IL‐based ABS containing methyl viologen and 2,2,6,6‐tetramethyl‐1‐piperidinyloxy as active species is demonstrated.
机译:由水,离子液体(ILs)和盐组成的两相水相系统(ABS),其中两相均富水,在此证明可以用作无膜电池。由于在ABS的每个水相中选择性富集氧化还原有机分子,因此该概念是可行的,在给定的盐和IL浓度以上,氧化还原有机分子自发形成两个液相。因此,电池中所需的电解质分离不是由阻碍传质的昂贵膜驱动的,而是由两种液相的固有不混溶性驱动的。此外,通常通过无效膜发生的交叉污染取决于两相之间活性分子的分配系数。表征了一系列基于IL的ABS的相图,确定了几种氧化还原有机分子的分配系数,并评估了这些氧化还原活性不混溶相的电化学性能,从而可以评估电池性能。确定了几种氧化还原ABS,这些氧化还原ABS可以用于理论电池电压高达1.6 V的总无膜水性电池。证明了由含甲基紫精和2,2,6,6-四甲基-1-哌啶基氧基作为活性物质的基于IL的ABS组成的无膜电池的可行性。

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