Inada N, Asakawa H, Matsumoto Y, Fukuma T
Division of Electrical Engineering and Computer Science, Kanazawa University, Kakuma-machi, Kanazawa 920-1192, Japan.
Nanotechnology. 2014 Aug 1;25(30):305602. doi: 10.1088/0957-4484/25/30/305602. Epub 2014 Jul 10.
The structure and protein resistance of oligo(ethylene glycol)-terminated self-assembled monolayers (OEG-SAMs) have been studied intensively using various techniques. However, their molecular-scale surface structures have not been well understood. In this study, we performed molecular-resolution imaging of OH-terminated SAMs (OH-SAMs) and hexa(ethylene glycol) SAMs (EG(6)OH-SAMs) formed on a Au(111) surface in an aqueous solution by frequency modulation atomic force microscopy (FM-AFM). The results show that most of the ethylene glycol (EG) chains in an EG(6)OH-SAM are closely packed and well-ordered to present a molecularly flat surface even in an aqueous solution. In addition, we found that EG(6)OH-SAMs have nanoscale defects, where molecules take a disordered arrangement with their molecular axes parallel to the substrate surface. We also found that the domain size (50-200 nm) of an EG(6)OH-SAM is much larger than that of OH-SAMs (10-40 nm). These findings should significantly advance molecular-scale understanding about the surface structure of OEG-SAMs.
人们已经使用各种技术对以低聚乙二醇为末端的自组装单分子层(OEG-SAMs)的结构和蛋白质抗性进行了深入研究。然而,它们的分子尺度表面结构尚未得到很好的理解。在本研究中,我们通过频率调制原子力显微镜(FM-AFM)对在水溶液中Au(111)表面形成的以OH为末端的单分子层(OH-SAMs)和六聚乙二醇单分子层(EG(6)OH-SAMs)进行了分子分辨率成像。结果表明,即使在水溶液中,EG(6)OH-SAM中的大多数乙二醇(EG)链也紧密堆积且排列有序,呈现出分子水平的平坦表面。此外,我们发现EG(6)OH-SAMs存在纳米级缺陷,其中分子以与基底表面平行的分子轴无序排列。我们还发现EG(6)OH-SAM的畴尺寸(50 - 200 nm)远大于OH-SAMs(10 - 40 nm)。这些发现应能显著推进对OEG-SAMs表面结构的分子尺度理解。