Ghasem Zadeh Khorasani Media, Silbernagl Dorothee, Platz Daniel, Sturm Heinz
Bundesanstalt für Materialforschung und -prüfung (BAM), Div. 6.6, D-12205 Berlin, Germany.
Department Polymertechnik/Polymerphysik, Technical University of Berlin, D-10587 Berlin, Germany.
Polymers (Basel). 2019 Feb 1;11(2):235. doi: 10.3390/polym11020235.
Understanding the interaction between nanoparticles and the matrix and the properties of interphase is crucial to predict the macroscopic properties of a nanocomposite system. Here, we investigate the interaction between boehmite nanoparticles (BNPs) and epoxy using different atomic force microscopy (AFM) approaches. We demonstrate benefits of using multifrequency intermodulation AFM (ImAFM) to obtain information about conservative, dissipative and van der Waals tip-surface forces and probing local properties of nanoparticles, matrix and the interphase. We utilize scanning kelvin probe microscopy (SKPM) to probe surface potential as a tool to visualize material contrast with a physical parameter, which is independent from the mechanics of the surface. Combining the information from ImAFM stiffness and SKPM surface potential results in a precise characterization of interfacial region, demonstrating that the interphase is softer than epoxy and boehmite nanoparticles. Further, we investigated the effect of boehmite nanoparticles on the bulk properties of epoxy matrix. ImAFM stiffness maps revealed the significant stiffening effect of boehmite nanoparticles on anhydride-cured epoxy matrix. The energy dissipation of epoxy matrix locally measured by ImAFM shows a considerable increase compared to that of neat epoxy. These measurements suggest a substantial alteration of epoxy structure induced by the presence of boehmite.
了解纳米颗粒与基体之间的相互作用以及界面相的性质对于预测纳米复合材料体系的宏观性质至关重要。在此,我们使用不同的原子力显微镜(AFM)方法研究勃姆石纳米颗粒(BNP)与环氧树脂之间的相互作用。我们展示了使用多频互调原子力显微镜(ImAFM)获取有关保守力、耗散力和范德华力尖端-表面力信息以及探测纳米颗粒、基体和界面相局部性质的优势。我们利用扫描开尔文探针显微镜(SKPM)探测表面电位,将其作为一种通过与力学无关的物理参数来可视化材料对比度的工具。将来自ImAFM刚度和SKPM表面电位的信息相结合,能够精确表征界面区域,表明界面相比环氧树脂和勃姆石纳米颗粒更软。此外,我们研究了勃姆石纳米颗粒对环氧树脂基体整体性质的影响。ImAFM刚度图显示了勃姆石纳米颗粒对酸酐固化环氧树脂基体的显著增强作用。与纯环氧树脂相比,通过ImAFM局部测量的环氧树脂基体的能量耗散有相当大的增加。这些测量结果表明,勃姆石的存在导致环氧树脂结构发生了实质性改变。