论文标题
微颗粒布朗尼运动附近的空气水接口,该界面受方向依赖性边界条件的控制
Microparticle Brownian Motion near an Air-Water Interface Governed by Direction-Dependent Boundary Conditions
论文作者
论文摘要
尽管过去的固体界面附近胶体的动力学在过去广泛表征,但接近空气水界面的布朗扩散的实验研究很少,并且限于粒子接口间隙距离距离大于粒径。在仍未开发的较低距离下,预计动力学对空气水接口处的边界条件非常敏感。在那里,临时实验将提供预测的定量验证。使用特殊设计的双波干涉测量设置,这里在热量平衡中测量了从空气水接口几百个纳米处的9微米直径颗粒的3D动力学。有趣的是,虽然与接口接近滑动边界条件的预期预测的测得的动力学相似,但与界面的正常运动非常接近于无滑动边界条件的预测。考虑到不可压缩的界面流的当前模型,并加深了一个临时模型,该模型考虑了界面处微小浓度的表面活性颗粒的贡献,因此这些令人困惑的结果是合理化的。我们认为,这种状况控制着从生物膜形成到浮选过程的大量系统中的粒子动力学。
Although the dynamics of colloids in the vicinity of a solid interface has been widely characterized in the past, experimental studies of Brownian diffusion close to an air-water interface are rare and limited to particle-interface gap distances larger than the particle size. At the still unexplored lower distances, the dynamics is expected to be extremely sensitive to boundary conditions at the air-water interface. There, ad hoc experiments would provide a quantitative validation of predictions. Using a specially designed dual wave interferometric setup, the 3D dynamics of 9 micrometers diameter particles at a few hundreds of nanometers from an air-water interface is here measured in thermal equilibrium. Intriguingly, while the measured dynamics parallel to the interface approaches expected predictions for slip boundary conditions, the Brownian motion normal to the interface is very close to the predictions for no-slip boundary conditions. These puzzling results are rationalized considering current models of incompressible interfacial flow and deepened developing an ad hoc model which considers the contribution of tiny concentrations of surface active particles at the interface. We argue that such condition governs the particle dynamics in a large spectrum of systems ranging from biofilm formation to flotation process.