Department of Chemical and Petroleum Engineering, The University of Kansas, Lawrence, Kansas 66046, USA.
Langmuir. 2013 Mar 19;29(11):3654-61. doi: 10.1021/la400062b. Epub 2013 Mar 7.
We present a study of static and dynamic interfacial properties of self-assembled polyelectrolyte complex nanoparticles (size 110-120 nm) containing entrapped surfactant molecules at a fluid/fluid interface. Surface tension vs time measurements of an aqueous solution of these polyelectrolyte complex nanoparticles (PCNs) show a concentration-dependent biphasic adsorption to the air/water interface while interfacial microrheology data show a concentration-dependent initial increase in the surface viscosity (up to 10(-7) N·m/s), followed by a sharp decrease (10(-9) N·m/s). Direct visualization of the air/water interface shows disappearance of particles from the interface over time. On the basis of these observations, we propose that the PCNs at fluid/fluid interfaces exist in two states: initial accumulation of PCNs at the air/water interface as nanoparticles, followed by interface induced disassembly of the accumulated PCNs into their components. The lack of change in particle size, charge, and viscosity of the bulk aqueous solution of PCNs with time indicates that this disintegration of the self-assembled PCNs is an interfacial phenomenon. Changes in energy encountered by the PCNs at the interface lead to instability of the self-assembled system and dissociation into its components. Such systems can be used for applications requiring directed delivery and triggered release of entrapped surfactants or macromolecules at fluid/fluid interfaces.
我们研究了含有被包裹表面活性剂分子的自组装聚电解质复合物纳米颗粒(大小为 110-120nm)在流体/流体界面上的静态和动态界面性质。这些聚电解质复合物纳米颗粒(PCN)的水溶液的表面张力随时间的测量表明,在空气/水界面上存在浓度依赖性的两相吸附,而界面微流变数据表明表面粘度(高达 10(-7) N·m/s)在浓度依赖性的初始增加后,会急剧下降(10(-9) N·m/s)。空气/水界面的直接可视化显示,颗粒会随时间从界面上消失。基于这些观察结果,我们提出,流体/流体界面上的 PCN 存在两种状态:最初在空气/水界面上作为纳米颗粒积累 PCN,然后界面诱导积累的 PCN 分解成其组成部分。PCN 的粒径、电荷和粘度在时间上没有变化,这表明自组装 PCN 的这种解体是一种界面现象。PCN 在界面上遇到的能量变化导致自组装系统的不稳定性和分解为其组成部分。这种系统可用于需要在流体/流体界面处定向输送和触发释放被包裹表面活性剂或大分子的应用。