State Key Laboratory of Physical Chemistry of Solid Surfaces, Department of Chemistry, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen 361005, People's Republic of China.
Beijing Advanced Innovation Center for Soft Matter Science and Engineering, Beijing University of Chemical Technology, Beijing 100029, People's Republic of China.
Nano Lett. 2022 Sep 14;22(17):6958-6963. doi: 10.1021/acs.nanolett.2c01762. Epub 2022 Aug 29.
The kinetics of mass transfer in a stagnant fluid layer next to an interface govern numerous dynamic reactions in diffusional micro/nanopores, such as catalysis, fuel cells, and chemical separation. However, the effect of the interplay between stagnant liquid and flowing fluid on the micro/nanoscopic mass transfer dynamics remains poorly understood. Here, by using liquid cell transmission electron microscopy (TEM), we directly tracked microfluid unit migration at the nanoscale. By tracking the trajectories, an unexpected mass transfer phenomenon in which fluid units in the stagnant liquid layer migrated two orders faster during gas-liquid interface updating was identified. Molecular dynamics (MD) simulations indicated that the chemical potential difference between nanoscale liquid layers led to convective flow, which greatly enhanced mass transfer on the surface. Our study opens up a pathway toward research on mass transfer in the surface liquid layers at high spatial and temporal resolutions.
在界面附近的静止流体层中的传质动力学控制着扩散微/纳米孔中的许多动态反应,例如催化、燃料电池和化学分离。然而,静止液体和流动液体之间的相互作用对微/纳米尺度传质动力学的影响仍了解甚少。在这里,我们通过使用液相透射电子显微镜(TEM)直接在纳米尺度上跟踪微流单元的迁移。通过跟踪轨迹,我们发现了一种意想不到的传质现象,即在气-液界面更新过程中,静止液层中的流体单元的迁移速度快了两个数量级。分子动力学(MD)模拟表明,纳米尺度液体层之间的化学势差导致了对流流动,从而极大地增强了表面的传质。我们的研究为在高时空分辨率下研究表面液体层中的传质开辟了一条途径。