Monteux Cécile, Kirkwood John, Xu Hui, Jung Eric, Fuller Gerald G
UPMC-ESPCI-CNRS-UMR7615, 10 rue Vauquelin, 75005, Paris, France.
Phys Chem Chem Phys. 2007 Dec 28;9(48):6344-50. doi: 10.1039/b708962g. Epub 2007 Sep 20.
The mechanical response of particle-laden fluid interfaces is determined by measuring the internal pressures of particle-coated drops as a function of the drop volume. The particle monolayers undergoing compression-expansion cycles exhibit three distinct states: fluid state, jammed state, and buckled state. The P-V curves are compared to the surface pressure isotherms Pi-A that are measured using a Langmuir trough and a Wilhelmy plate on a flat water-decane interface covered with the same particles. We find that in the fluid and jammed states, the water drop in decane can be described by the Young-Laplace equation. Therefore in these relatively low compression states, the bulk pressure measurements can be used to deduce the interfacial tension of the droplets and yield similar surface pressure isotherms to the ones measured with the Wilhelmy plate. In the buckled state, the internal pressure of the drop yields a zero value, which is consistent with the zero interfacial tension measured with the Wilhelmy plate. Moreover we find that the compressibility in the jammed state does not depend on the particle size.
通过测量颗粒包覆液滴的内部压力随液滴体积的变化,来确定含颗粒流体界面的力学响应。经历压缩-膨胀循环的颗粒单层表现出三种不同状态:流体状态、堵塞状态和屈曲状态。将P-V曲线与表面压力等温线Pi-A进行比较,后者是在覆盖有相同颗粒的平坦水-癸烷界面上,使用Langmuir槽和Wilhelmy板测量得到的。我们发现,在流体状态和堵塞状态下,癸烷中的水滴可以用Young-Laplace方程来描述。因此,在这些相对较低的压缩状态下,体压力测量可用于推断液滴的界面张力,并产生与用Wilhelmy板测量的表面压力等温线相似的结果。在屈曲状态下,液滴的内部压力为零,这与用Wilhelmy板测量的零界面张力一致。此外,我们发现堵塞状态下的压缩性不取决于颗粒大小。