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首页> 外文期刊>Nanotechnology >Nano-indentation at the surface contact level: applying a harmonic frequency for measuring contact stiffness of self-assembled monolayers adsorbed on Au
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Nano-indentation at the surface contact level: applying a harmonic frequency for measuring contact stiffness of self-assembled monolayers adsorbed on Au

机译:表面接触水平的纳米压痕:施加谐波频率以测量吸附在Au上的自组装单分子膜的接触刚度

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摘要

In this study, the well-ordered alkanethiolate self-assembled monolayers (SAMs) of varied chain lengths and tail groups were employed as examples for nano-characterization on their mechanical properties. A novel nano-indentation technique with a constant harmonic frequency was applied on SAMs chemically adsorbed on Au to explore their contact mechanics, and furthermore to interpret how SAM molecules respond to an infinitesimal oscillation force without pressing them. Experimental results demonstrated that the harmonic contact stiffness along with the measured displacement of SAMs/Au was distinguishable using a dynamic contact modulus with the distinct feature of phase angles. Phase angles resulted from the relaxing continuation of an applied harmonic frequency and mostly influenced by the outermost tail group of SAM molecules. The harmonic contact stiffness of SAM molecules obviously increased with the densely packed alkyl chains and relatively intense agglomeration of the head group at the anchoring site. As a consequence, the result of this work is relevant to contact mechanics at the surface contact level for the distinction of molecular substances attached on a solid surface. Furthermore it is particularly anticipated to identify biological molecules of variable qualities under a fluid-like micro-environment.
机译:在这项研究中,具有不同链长和尾基的有序链烷硫醇自组装单分子膜(SAMs)被用作纳米表征其机械性能的实例。将一种具有恒定谐波频率的新型纳米压痕技术应用于化学吸附在Au上的SAM上,以探索其接触机理,并进一步解释SAM分子如何响应无穷小的振荡力而无需按动它们。实验结果表明,谐波接触刚度以及测得的SAMs / Au位移可以使用具有相角特征的动态接触模量来区分。相角是由所施加的谐波频率的松弛连续产生的,并且主要受SAM分子最外面的尾基的影响。 SAM分子的谐波接触刚度随着烷基链的密集堆积和锚固位头基团的相对强烈聚集而明显增加。结果,这项工作的结果与表面接触水平的接触力学有关,以区别附着在固体表面上的分子物质。此外,特别期望在流体状的微环境下鉴定质量可变的生物分子。

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