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首页> 外文期刊>Spectrochimica acta, Part A. Molecular and biomolecular spectroscopy >A Raman spectroscopy study on the effects of intermolecular hydrogen bonding on water molecules absorbed by borosilicate glass surface
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A Raman spectroscopy study on the effects of intermolecular hydrogen bonding on water molecules absorbed by borosilicate glass surface

机译:分子间氢键在硼硅酸盐玻璃表面吸收水分子上的分子间氢键的影响的拉曼光谱研究

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The structural forms of water/deuterated water molecules located on the surface of borosilicate capillaries have been first investigated in this study on the basis of the Raman spectral data obtained at different temperatures and under atmospheric pressure for molecules in bulk and also for molecules absorbed by borosilicate glass surface. The strongest two fundamental bands locating at 3063 cm(-1) (2438 cm(-1)) in the recorded Raman spectra are assigned here to the O-H (O-D) bond stretching vibrations and they are compared with the corresponding bands observed at 3124 cm(-1) (2325 cm(-1)) in the Raman spectrum of ice Ih. Our spectroscopic observations have indicated that the structure of water and deuterated water molecules on borosilicate surface is similar to that of ice Ih (hexagonal phase of ice). These observations have also indicated that water molecules locate on the borosilicate surface so as to construct a bilayer structure and that strong and weak intermolecular hydrogen bonds are formed between water/deuterated molecules and silanol groups on borosilicate surface. In accordance with these findings, water and deuterated water molecules at the interface of capillary have a higher melting temperature. (C) 2018 Published by Elsevier B.V.
机译:首先在本研究中首先基于在不同温度下获得的拉曼光谱数据和散装分子的大气压,并且还在散装物中获得的大气压以及由硼硅酸盐吸收的分子在大气压下进行的水/氘化水分子的结构形式的水/氘化水分子。玻璃表面。在记录的拉曼光谱中定位在3063厘米(-1)(2438cm(-1))的最强大的两个基波频带在此处分配给OH(OD)键拉伸振动,并且它们与在3124cm处观察到的相应带进行比较(-1)(2325厘米(-1))在冰Ih的拉曼光谱中。我们的光谱观察表明,硼硅酸盐表面上的水和氘化水分子的结构类似于冰Ih(冰阶段)的结构。这些观察结果还表明水分子位于硼硅酸盐表面上,以构建双层结构,并且在硼硅酸盐表面上的水/氘代分子和硅烷醇基团之间形成强且弱的分子间氢键。根据这些发现,毛细管界面处的水和氘化水分子具有较高的熔化温度。 (c)2018由elestvier b.v出版。

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