Walczyk Wiktoria, Hain Nicole, Schönherr Holger
Physical Chemistry I, University of Siegen, Department of Chemistry and Biology, Adolf-Reichwein-Str. 2, 57076 Siegen, Germany.
Soft Matter. 2014 Aug 28;10(32):5945-54. doi: 10.1039/c4sm01024h.
We report on an Atomic Force Microscopy (AFM) study of AFM tip-nanobubble interactions in experiments conducted on argon surface nanobubbles on HOPG (highly oriented pyrolytic graphite) in water in tapping mode, lift mode and Force Volume (FV) mode AFM. By subsequent data acquisition on the same nanobubbles in these three different AFM modes, we could directly compare the effect of different tip-sample interactions. The tip-bubble interaction strength was found to depend on the vertical and horizontal position of the tip on the bubble with respect to the bubble center. The interaction forces measured experimentally were in good agreement with the forces calculated using the dynamic interaction model. The strength of the hydrodynamic effect was also found to depend on the direction of the tip movement. It was more pronounced in the FV mode, in which the tip approaches the bubble from the top, than in the lift mode, in which the tip approaches the bubble from the side. This result suggests that the direction of tip movement influences the bubble deformation. The effect should be taken into account when nanobubbles are analysed by AFM in various scanning modes.
我们报告了一项关于原子力显微镜(AFM)的研究,该研究是在敲击模式、提升模式和力谱(FV)模式的原子力显微镜下,对水中高度定向热解石墨(HOPG)表面的氩气纳米气泡进行实验,研究AFM针尖与纳米气泡之间的相互作用。通过在这三种不同的AFM模式下对同一纳米气泡进行后续数据采集,我们可以直接比较不同针尖 - 样品相互作用的效果。发现针尖 - 气泡相互作用强度取决于针尖相对于气泡中心在气泡上的垂直和水平位置。实验测量的相互作用力与使用动态相互作用模型计算的力非常吻合。还发现流体动力学效应的强度取决于针尖移动的方向。在FV模式(针尖从顶部接近气泡)中比在提升模式(针尖从侧面接近气泡)中更明显。这一结果表明针尖移动方向会影响气泡变形。在通过AFM在各种扫描模式下分析纳米气泡时,应考虑这一效应。