Key Lab of Science and Technology of Eco-Textile, Ministry of Education, College of Chemistry, Chemical Engineering and Biotechnology, Donghua University, Shanghai 201620, China.
College of Chemistry and Molecular Sciences, Wuhan University, Wuhan 430072, China.
Anal Chem. 2020 May 5;92(9):6408-6414. doi: 10.1021/acs.analchem.9b05510. Epub 2020 Apr 24.
Gas bubble evolution is present in many electrochemical and photoelectrochemical processes. We previously reported the formation of individual H, N, and O nanobubbles generated from electrocatalytic reduction of H and oxidation of NH and HO, respectively, at Pt nanodisk electrodes in an aqueous solution. All the nanobubbles formed display a dynamic stationary state of a three-phase boundary with an invariant residual current. Here, we test the hypothesis that gas nanobubbles can also be electrogenerated in a nonaqueous medium. Interestingly, we found oscillating bubble behavior corresponding to nucleation, growth, and dissolution in dimethyl sulfoxide and methanol. One possible explanation of the oscillation mechanism is provided by the instable dynamic equilibrium between the gas influx due to supersaturation and outflux due to Laplace pressure. Furthermore, the critical gas concentrations for N nanobubble nucleation are estimated to be 148, 386, 200, and 16 times supersaturation and the contact angles of the critical nuclei to be 164°, 151°, 160°, and 174° in water, dimethyl sulfoxide, ethylene glycol, and methanol, respectively. This is the first report on electrochemical nucleation of gas bubbles in nonaqueous solvents. Our electrochemical gas bubble study based on a nanoelectrode platform has proven to be a prototypical example of single-entity electrochemistry.
气体气泡的演化存在于许多电化学和光电化学过程中。我们之前曾报道过,在水溶液中,Pt 纳米盘电极上分别通过 H 的电催化还原和 NH 和 HO 的氧化,形成了由单个 H、N 和 O 纳米气泡组成的三相边界的动态稳定状态,具有不变的残余电流。在这里,我们测试了气体纳米气泡也可以在非水介质中电生成的假设。有趣的是,我们发现了在二甲基亚砜和甲醇中与成核、生长和溶解相对应的气泡振荡行为。振荡机制的一个可能解释是由于过饱和度导致的气体流入和由于拉普拉斯压力导致的流出之间的不稳定动态平衡。此外,估计 N 纳米气泡成核的临界气体浓度分别为过饱和度的 148、386、200 和 16 倍,临界核的接触角分别为 164°、151°、160°和 174°,在水、二甲基亚砜、乙二醇和甲醇中。这是关于非水溶剂中电化学气泡成核的第一个报告。我们基于纳米电极平台的电化学气泡研究已被证明是单实体电化学的典型范例。