论文标题
原子力显微镜在流体界面处的三维形状的原位成像
In-situ imaging of the three-dimensional shape of soft responsive particles at fluid interfaces by atomic force microscopy
论文作者
论文摘要
在两种流体之间的界面吸附时,柔软的,可变形的颗粒的重新配置是其动态和相互作用的许多方面的基础,最终控制了材料相关粒子单层的宏观特性,例如粒子稳定的乳液和泡沫和泡沫,以及过程,以及e。 g。基于粒子的光刻。尽管它的重要性,但在实验上确定具有高分辨率的流体界面处的软颗粒的三维形状仍然是一项难以捉摸的任务。在这项工作中,我们将聚(N-异丙基丙烯酰胺)(PNIPAM)微凝胶作为模型软颗粒,并证明它们在水相中的界面和油相之间的构象可以通过原位原子力显微镜显微镜(AFM)成像完全重建。我们表明,从界面的两侧成像粒子地形,可以表征界面张力的作用下粒子的平面内变形,并可视化两种流体中不对称肿胀的发生。此外,该技术可以研究不同的流体相和颗粒体系结构,并原位研究温度变化对颗粒构象的影响。我们设想这些结果为在流体界面上软对象的单粒子行为与相关的宏观物质特性和相关性的宏观物质特性和基本研究都相关的宏观物质特性提供了令人兴奋的可能性范围。
The reconfiguration of soft, deformable particles upon adsorption at the interface between two fluids underpins many aspects of their dynamics and interactions, ultimately controlling the macroscopic properties of particle monolayers of relevance for materials, such as particle-stabilized emulsions and foams, and processes, e. g. particle-based lithography. In spite of its importance, experimentally determining the three-dimensional shape of soft particles at fluid interfaces with high resolution remains an elusive task. In this work, we take poly(N-isopropylacrylamide) (pNIPAM) microgels as model soft particles and demonstrate that their conformation at the interface between an aqueous and an oil phase can be fully reconstructed by means of in-situ atomic force microscopy (AFM) imaging. We show that imaging the particle topography from both sides of the interface allows one to characterize the in-plane deformation of the particle under the action of interfacial tension and to visualize the occurrence of asymmetric swelling in the two fluids. Additionally, the technique enables investigating different fluid phases and particle architectures, as well as studying in situ the effect of temperature variations on particle conformation. We envisage that these results open up an exciting range of possibilities to provide microscopic insights between the single-particle behavior of soft objects at fluid interfaces and macroscopic material properties of relevance for applications and fundamental studies alike.