Institute of Bioproducts and Paper Technology, Inffeldgasse 23, 8010 Graz, Austria.
CD Laboratory for Fiber Swelling and Paper Performance, Inffeldgasse 23, 8010 Graz, Austria.
ACS Appl Mater Interfaces. 2021 Apr 28;13(16):19521-19529. doi: 10.1021/acsami.1c04226. Epub 2021 Apr 15.
Adhesion is caused by molecular interactions that only take place if the surfaces are in nanoscale contact (NSC); i.e., the distance between the surfaces is in the range of 0.1-0.4 nm. However, there are several difficulties measuring the NSC between surfaces, mainly because regions that appear to be in full contact at low magnification may show no NSC when observed at higher magnifications. Thus, the measurement area of NSC is very small with imaging techniques, and an experimental technique to evaluate NSC for large contact areas has not been available thus far. Here, we are proposing Förster resonance energy transfer (FRET) spectroscopy/microscopy for this purpose. We demonstrate that NSC in a distance range of 1-10 nm can be evaluated. Our experiments reveal that, for thin films pressed under different loads, NSC increases with the applied pressure, resulting in a higher FRET signal and a corresponding increase in adhesion force/energy when separating the films. Furthermore, we show that local variations in molecular contact can be visualized with FRET microscopy. Thus, we are introducing a spectroscopic technique for quantification (FRET spectroscopy) and imaging (FRET microscopy) of NSC between surfaces, demonstrated here for the application of surface adhesion. This could be of interest for all fields where adhesion or nanoscale surface contact are playing a role, for example, soft matter, biological materials, and polymers, but also engineering applications, like tribology, adhesives, and sealants.
粘连是由分子相互作用引起的,只有在表面处于纳米级接触(NSC)时才会发生;即,表面之间的距离在 0.1-0.4nm 的范围内。然而,测量表面之间的 NSC 存在几个困难,主要是因为在低倍放大下似乎处于完全接触的区域在高倍放大下可能显示不出 NSC。因此,成像技术的 NSC 测量面积非常小,并且到目前为止还没有用于评估大接触面积 NSC 的实验技术。在这里,我们提出了用于此目的的Förster 共振能量转移(FRET)光谱/显微镜。我们证明可以评估 1-10nm 距离范围内的 NSC。我们的实验表明,对于在不同压力下压制的薄膜,NSC 随施加的压力而增加,导致 FRET 信号更高,并且在分离薄膜时相应地增加粘附力/能量。此外,我们表明可以用 FRET 显微镜可视化分子接触的局部变化。因此,我们引入了一种用于定量(FRET 光谱学)和成像(FRET 显微镜)表面之间 NSC 的光谱技术,这里展示了其在表面粘连应用中的应用。这可能对所有涉及粘连或纳米级表面接触的领域都有意义,例如软物质、生物材料和聚合物,但也对工程应用(如摩擦学、粘合剂和密封剂)有意义。