首页> 外文期刊>The Journal of Chemical Physics >Isotopomer-selective spectra of a single intact H2O molecule in the Cs+(D2O)(5)H2O isotopologue: Going beyond pattern recognition to harvest the structural information encoded in vibrational spectra
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Isotopomer-selective spectra of a single intact H2O molecule in the Cs+(D2O)(5)H2O isotopologue: Going beyond pattern recognition to harvest the structural information encoded in vibrational spectra

机译:Cs +(D2O)(5)H2O同位素异构体中单个完整H2O分子的同位素异构体选择性光谱:超越模式识别,可收集振动光谱中编码的结构信息

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摘要

We report the vibrational signatures of a single H2O molecule occupying distinct sites of the hydration network in the Cs+(H2O)(6) cluster. This is accomplished using isotopomer-selective IR-IR hole-burning on the Cs+(D2O)(5)(H2O) clusters formed by gas-phase exchange of a single, intact H2O molecule for D2O in the Cs+(D2O)(6) ion. The OH stretching pattern of the Cs+(H2O)(6) isotopologue is accurately recovered by superposition of the isotopomer spectra, thus establishing that the H2O incorporation is random and that the OH stretching manifold is largely due to contributions from decoupled water molecules. This behavior enables a powerful new way to extract structural information from vibrational spectra of size-selected clusters by explicitly identifying the local environments responsible for specific infrared features. The Cs+(H2O)(6) structure was unambiguously assigned to the 4.1.1 isomer (a homodromic water tetramer with two additional flanking water molecules) from the fact that its computed IR spectrum matches the observed overall pattern and recovers the embedded correlations in the two OH stretching bands of the water molecule in the Cs+(D2O)(5)(H2O) isotopomers. The 4.1.1 isomer is the lowest in energy among other candidate networks at advanced (e.g., CCSD(T)) levels of theoretical treatment after corrections for (anharmonic) zero-point energy. With the structure in hand, we then explore the mechanical origin of the various band locations using a local electric field formalism. This approach promises to provide a transferrable scheme for the prediction of the OH stretching fundamentals displayed by water networks in close proximity to solute ions. (C) 2016 AIP Publishing LLC.
机译:我们报告了单个水分子占据Cs +(H2O)(6)群集中水化网络的不同站点的振动信号。这是通过在Cs +(D2O)(5)(H2O)簇上进行同位素异构体选择性IR-IR空穴燃烧来完成的,该簇是通过将一个完整的H2O分子与Cs +(D2O)中的D2O进行气相交换而形成的(6)离子。 Cs +(H2O)(6)同位素异构体的OH拉伸模式可通过同位素异构体光谱的叠加准确地恢复,因此可确定H2O的掺入是随机的,并且OH拉伸歧管很大程度上是由于解耦水分子的贡献。通过明确识别负责特定红外特征的本地环境,此行为提供了一种强大的新方法,可从大小选定的簇的振动谱中提取结构信息。 Cs +(H2O)(6)结构明确分配给4.1.1异构体(具有两个额外侧翼水分子的同水四聚体),原因是其计算出的IR光谱与观察到的整体模式相符,并恢复了嵌入的相关性。 Cs +(D2O)(5)(H2O)异构体中水分子的两个OH拉伸带。在校正了(非调和)零点能量之后,在理论处理的高级(例如CCSD(T))水平上,4.1.1异构体的能量最低,处于其他候选网络中。掌握了结构之后,我们使用局部电场形式来探索各个波段位置的机械起源。该方法有望为预测由紧靠溶质离子的水网络显示的OH拉伸基本原理提供一个可转移的方案。 (C)2016 AIP出版有限责任公司。

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