Hammond Oliver S, Li Hua, Westermann Christian, Al-Murshedi Azhar Y M, Endres Frank, Abbott Andrew P, Warr Gregory G, Edler Karen J, Atkin Rob
Centre for Sustainable Chemical Technologies, University of Bath, Claverton Down, Bath BA2 7AY, UK.
Nanoscale Horiz. 2019 Jan 1;4(1):158-168. doi: 10.1039/c8nh00272j. Epub 2018 Sep 18.
The interfacial nanostructure of the three most widely-studied Deep Eutectic Solvents (DESs), choline chloride:urea (ChCl:Urea), choline chloride:ethylene glycol (ChCl:EG), and choline chloride:glycerol (ChCl:Gly) at a Pt(111) electrode has been studied as a function of applied potential and water content up to 50 wt%. Contact mode atomic force microscope (AFM) force-distance curves reveal that for all three DESs, addition of water increases the interfacial nanostructure up to ∼40 wt%, after which it decreases. This differs starkly from ionic liquids, where addition of small amounts of water rapidly decreases the interfacial nanostructure. For the pure DESs, only one interfacial layer is measured at OCP at 0.5 nm, which increases to 3 to 6 layers extending ∼5 nm from the surface at 40 or 50 wt% water. Application of a potential of ±0.25 V to the Pt electrode for the pure DESs increases the number of near surface layers to 3. However, when water is present the applied potential attenuates the steps in the force curve, which are replaced by a short-range exponential decay. This change was most pronounced for ChCl:EG with 30 wt% or 50 wt% water, so this system was probed using cyclic voltammetry, which confirms the interfacial nanostructure is akin to a salt solution.
研究了三种研究最为广泛的深共熔溶剂(DESs),即氯化胆碱:尿素(ChCl:Urea)、氯化胆碱:乙二醇(ChCl:EG)和氯化胆碱:甘油(ChCl:Gly)在Pt(111)电极上的界面纳米结构,该结构是施加电势和水含量(最高达50 wt%)的函数。接触模式原子力显微镜(AFM)力-距离曲线表明,对于所有这三种DESs,添加水会使界面纳米结构增加至约40 wt%,之后则会减少。这与离子液体形成鲜明对比,在离子液体中添加少量水会迅速降低界面纳米结构。对于纯DESs,在开路电位(OCP)下于0.5 nm处仅测量到一个界面层,在水含量为40或50 wt%时,该界面层增加至3至6层,从表面延伸约5 nm。对纯DESs在Pt电极上施加±0.25 V的电势会使近表面层数增加至3层。然而,当有水存在时,施加的电势会使力曲线中的台阶衰减,取而代之的是短程指数衰减。这种变化在水含量为30 wt%或50 wt%的ChCl:EG中最为明显,因此使用循环伏安法对该体系进行了探测,这证实了界面纳米结构类似于盐溶液。