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Probing the intermolecular coupled vibrations in a water cluster with inelastic electron tunneling spectroscopy

机译:无弹性电子隧穿光谱探测水簇中的分子间耦合振动

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摘要

The hydrogen-bonding networks of water have strong intra- and intermolecular vibrational coupling which influences the energy dissipation and proton transfer in water. Disentangling and quantitative characterization of different coupling effects in water at a single-molecular level still remains a great challenge. Using tip-enhanced inelastic electron tunneling spectroscopy (IETS) based on low-temperature scanning tunneling microscopy, we report the direct quantitative assessment of the intermolecular coupling constants of the OH-stretch vibrational bands of an isolated water tetramer adsorbed on a Au(111)-supported NaCl(001) bilayer film. This is achieved by distinguishing various coupled modes of the H-bonded O-H stretching vibrations through tip-height dependent IET spectra. In contrast, such vibrational coupling is negligible in the half-deuterated water tetramer owing to the large energy mismatch between the OH and OD stretching modes. Not only do these findings advance our understanding on the effects of local environment on the intermolecular vibrational coupling in water, but also open up a new route for vibrational spectroscopic studies of extended H-bonded network at the single-molecular level.
机译:水的氢键网络具有强大的内分子间振动耦合,从而影响水中的能量耗散和质子转移。单分子水平在水中不同偶联效果的解解和定量表征仍然是一个巨大的挑战。使用基于低温扫描隧道显微镜的尖端增强的无弹性电子隧穿光谱(IET),我们报告了在Au(111)上吸附的分离的水四聚体的OH-拉伸振动带的分子偶联常数的直接定量评估-Supported NaCl(001)双层膜。这通过区分通过尖端高度依赖的IET光谱来区分H键合O-H拉伸振动的各种耦合模式来实现。相反,由于OH和OD拉伸模式之间的大能量不匹配,这种振动耦合在半氘水四聚体中可以忽略不计。这些发现不仅可以推进我们对局部环境对水中分子间振动偶联的影响的理解,还在单分子水平下开辟了扩展H键合网络的振动光谱研究的新途径。

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  • 来源
    《The Journal of Chemical Physics》 |2020年第23期|共7页
  • 作者单位

    Beijing Normal Univ Coll Chem Beijing 100875 Peoples R China;

    Peking Univ Int Ctr Quantum Mat Sch Phys Beijing 100871 Peoples R China;

    Peking Univ Sch Phys Beijing 100871 Peoples R China;

    Peking Univ Int Ctr Quantum Mat Sch Phys Beijing 100871 Peoples R China;

    Peking Univ Int Ctr Quantum Mat Sch Phys Beijing 100871 Peoples R China;

    Peking Univ Int Ctr Quantum Mat Sch Phys Beijing 100871 Peoples R China;

    Peking Univ Int Ctr Quantum Mat Sch Phys Beijing 100871 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物理化学(理论化学)、化学物理学;
  • 关键词

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