Université Grenoble Alpes, National Center for Scientific Research, Laboratoire Interdisciplinaire de Physique (LIPhy), 38000 Grenoble, France.
Université Grenoble Alpes, National Center for Scientific Research, Laboratoire Interdisciplinaire de Physique (LIPhy), 38000 Grenoble, France
Proc Natl Acad Sci U S A. 2021 Aug 17;118(33). doi: 10.1073/pnas.2102449118.
By considering a water capillary bridge confined between two flat surfaces, we investigate the thermodynamics of the triple line delimiting this solid-liquid-vapor system when supplemented in carbon dioxide. In more detail, by means of atom-scale simulations, we show that carbon dioxide accumulates at the solid walls and, preferably, at the triple lines where it plays the role of a line active agent. The line tension of the triple line, which is quantitatively assessed using an original mechanical route, is shown to be driven by the line excess concentrations of the solute (carbon dioxide) and solvent (water). Solute accumulation at the lines decreases the negative line tension (i.e., more negative) while solvent depletion from the lines has the opposite effect. Such an unprecedented quantitative assessment of gas-induced line tension modifications shows that the absolute value of the negative line tension increases upon increasing the carbon dioxide partial pressure. As a striking example, for hydrophilic surfaces, the line tension is found to increase by more than an order of magnitude when the carbon dioxide pressure exceeds 3 MPa. By considering the coupling between line and surface effects induced by gaseous adsorption, we hypothesize from the observed gas concentration-dependent line tension a nontrivial impact on heterogeneous nucleation of nanometric critical nuclei.
通过考虑两个平面之间的受限水毛细管桥,我们研究了补充二氧化碳后限定固-液-气系统的三相线的热力学。更详细地说,通过原子尺度模拟,我们表明二氧化碳在固壁处积聚,并且优选地在三相线处积聚,在三相线处,二氧化碳起到线活性剂的作用。使用原始的力学方法定量评估了三相线的线张力,结果表明线张力由溶质(二氧化碳)和溶剂(水)的线过剩浓度驱动。线处的溶质积聚降低了负的线张力(即更负),而从线处耗尽溶剂则具有相反的效果。这种对气体诱导的线张力变化的前所未有的定量评估表明,随着二氧化碳分压的增加,负的线张力的绝对值增加。作为一个显著的例子,对于亲水表面,当二氧化碳压力超过 3 MPa 时,线张力发现增加了一个数量级以上。通过考虑气体吸附引起的线和表面效应的耦合,我们根据观察到的线张力与气体浓度的依赖性,假设对纳米级临界核的非均匀成核有重要影响。