Umeda Kenichi, Kobayashi Kei, Yamada Hirofumi
Nano Life Science Institute (WPI-NanoLSI), Kanazawa University, Kakuma-machi, Kanazawa, Ishikawa, 920-1192, Japan.
PRESTO/JST, 4-1-8 Honcho, Kawaguchi, Saitama 332-0012, Japan.
Nanoscale. 2022 Mar 24;14(12):4626-4634. doi: 10.1039/d2nr00369d.
Surfactants play a critical role in bottom-up nanotechnologies due to their peculiar nature of controlling the interfacial energy. Since their operational mechanism originates from the molecular-scale formation and disruption processes of molecular assemblies (, micelles), conventional static-mode atomic force microscopy has made a significant contribution to unravel the detailed molecular pictures. Recently, we have successfully developed a local solvation measurement technique based on three-dimensional frequency-modulation atomic force microscopy, whose spatial resolution is not limited by jump-to-contact. Here, using this novel technique, we investigate molecular nanomechanics in the formation and disruption processes of micelles formed on a hydrophobic surface. Furthermore, an experiment employing a hetero-nanostructure reveals that the nanomechanics depends on the form of the molecular assembly. Namely, the hemifusion and disruption processes are peculiar to the micellar surface and cause a higher energy dissipation than the monolayer surface. The technique established in this study will be used as a generic technology for further development of bottom-up nanotechnologies.
由于表面活性剂具有控制界面能的特殊性质,它们在自下而上的纳米技术中起着关键作用。由于其作用机制源于分子组装体(如胶束)的分子尺度形成和破坏过程,传统的静态模式原子力显微镜在揭示详细的分子图像方面做出了重大贡献。最近,我们成功开发了一种基于三维频率调制原子力显微镜的局部溶剂化测量技术,其空间分辨率不受接触跳跃的限制。在此,利用这种新技术,我们研究了在疏水表面形成和破坏胶束过程中的分子纳米力学。此外,一项使用异质纳米结构的实验表明,纳米力学取决于分子组装的形式。也就是说,半融合和破坏过程是胶束表面特有的,并且比单层表面导致更高的能量耗散。本研究中建立的技术将作为自下而上纳米技术进一步发展的通用技术。