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A simple vaporous probe with atomic-scale sensitivity to structural ordering and orientation of molecular assembly

机译:具有原子尺度对分子组装的结构有序性和取向敏感性的简单蒸气探针

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摘要

Understanding the structural ordering and orientation of interfacial molecular assemblies requires an insight into the penetration depth of the probe molecules which determines the interfacial reactivity. In contrast to the conventional liquid probe-based contact angle measurement in which penetration depth is complicated by the liquid cohesive interaction, we report here a new approach that features a simple combination of vaporous hexane, which involves only van der Waals interaction, and quartz crystal microbalance operated at the third harmonic resonance, which is sensitive to sub-monolayer (0.2%) adsorption. Using this combination, we demonstrated the ability of probing the structural ordering and orientation of the self-assembled monolayers with a sensitivity from penetrating the top portion of the monolayers to interacting with the very top atomic structure at the interface. The determination of the dependence of the adsorption energy of vaporous hexane on the penetration depth in the molecular assembly allowed us to further reveal the atomic-scale origin of the odd–even oscillation, which is also substantiated by density functional theory calculations. The findings have broader implications for designing interfacial reactivities of molecular assemblies with atomic-scale depth precision.
机译:了解界面分子组装体的结构顺序和方向需要深入了解确定界面反应性的探针分子的渗透深度。与传统的基于液体探针的接触角测量方法不同,在传统的基于液体探针的接触角测量方法中,渗透深度由于液体内聚相互作用而变得复杂,我们在此报告了一种新方法,该方法具有仅涉及范德华相互作用的蒸气己烷和石英晶体的简单组合微量天平在三次谐波共振下运行,该共振对亚单层(0.2%)吸附敏感。使用这种组合,我们证明了探测自组装单分子层的结构有序性和定向性的能力,其敏感性从穿透单分子层的顶部到与界面的最高原子结构相互作用。气相己烷中吸附能量对分子组装体穿透深度的依赖性的确定使我们能够进一步揭示奇偶振荡的原子尺度起源,这也被密度泛函理论计算所证实。这些发现对于设计具有原子级深度精度的分子组装体的界面反应性具有更广泛的意义。

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