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低温下有机基底上的界面水:亚单层状态下的氢键作用与定量分析

Interfacial water on organic substrates at cryogenic temperatures: hydrogen bonding and quantification in the submonolayer regime.

作者信息

Houdoux D, Houplin J, Amiaud L, Lafosse A, Dablemont C

机构信息

Institut des Sciences Moléculaires d'Orsay (ISMO), CNRS, Univ. Paris Sud, Université Paris Saclay, F-91405 Orsay, France.

出版信息

Phys Chem Chem Phys. 2017 Jan 18;19(3):2304-2312. doi: 10.1039/c6cp03328h.

Abstract

Water molecules were used to probe the physical and chemical properties of a model hydrophilic organic organized layer. To this end, HO adsorption on mercaptoundecanoic acid self-assembled monolayers (SAMs) was investigated at the molecular level under ultra-high vacuum by high resolution electron energy loss spectroscopy (HREELS), through the sensitivity of the water OH stretching modes to the molecular environment. The water interfacial layer formation and structure were studied upon deposition at 28 K. A direct sensitive quantification in the submonolayer regime (10-80% of completion) was achieved by the sole measurement of the OH stretching mode frequencies, and the dominant basic (-COO)/acidic (-COOH) forms of the terminal functions could be probed. The surface densities of the water interfacial layer and the SAM terminal functions were measured independently, and demonstrated to be comparable. This means that the SAM terminal functions provided anchors for water adsorption through two hydrogen bonds and that the SAM acted as a template even at 28 K. Upon annealing at 110 K, the water molecules were observed to form clusters of higher molecular density, dewetting the supporting substrate. Finally, the vanishing of the supporting substrate vibrational signature, due to the masking effect by the deposited water layer, was used to estimate the depth probed by HREELS through water layers to be 11 ± 2 Å.

摘要

水分子被用于探究模型亲水性有机有序层的物理和化学性质。为此,通过水的OH伸缩振动模式对分子环境的敏感性,利用高分辨率电子能量损失谱(HREELS)在超高真空下于分子水平研究了水在巯基十一烷酸自组装单分子层(SAMs)上的吸附。在28 K下沉积时研究了水界面层的形成和结构。通过仅测量OH伸缩振动模式频率,在亚单层区域(完成度的10 - 80%)实现了直接灵敏的定量分析,并且可以探测末端官能团的主要碱性(-COO)/酸性(-COOH)形式。独立测量了水界面层和SAM末端官能团的表面密度,结果表明二者具有可比性。这意味着SAM末端官能团通过两个氢键为水吸附提供了锚定位点,并且即使在28 K时SAM也起到了模板的作用。在110 K退火时,观察到水分子形成了分子密度更高的簇,使支撑衬底去湿。最后,由于沉积水层的掩蔽效应,支撑衬底振动信号的消失被用于估计HREELS透过水层探测的深度为11±2 Å。

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