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Probing equilibrium of molecular and deprotonated water on TiO2(110)

机译:在TiO2(110)上探索分子水和去质子水的平衡

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摘要

Understanding adsorbed water and its dissociation to surface hydroxyls on oxide surfaces is key to unraveling many physical and chemical processes, yet the barrier for its deprotonation has never been measured. In this study, we present direct evidence for water dissociation equilibrium on rutile-TiO2(110) by combining supersonic molecular beam, scanning tunneling microscopy (STM), and ab initio molecular dynamics. We measure the deprotonation/protonation barriers of 0.36 eV and find that molecularly bound water is preferred over the surface-bound hydroxyls by only 0.035 eV. We demonstrate that long-range electrostatic fields emanating from the oxide lead to steering and reorientation of the molecules approaching the surface, activating the O–H bonds and inducing deprotonation. The developed methodology for studying metastable reaction intermediates prepared with a high-energy molecular beam in the STM can be readily extended to other systems to clarify a wide range of important bond activation processes.
机译:了解吸附的水及其在氧化物表面上与表面羟基的离解是解开许多物理和化学过程的关键,但从未测量过其去质子化的障碍。在这项研究中,我们提供了结合超音速分子束,扫描隧道显微镜(STM)和从头算分子动力学的金红石型TiO2(110)上水离解平衡的直接证据。我们测量了0.36 eV的去质子化/质子化势垒,发现分子结合的水比表面结合的羟基更可取,仅0.035 eV。我们证明了从氧化物发出的长距离静电场会导致接近表面的分子的转向和重新定向,激活O–H键并诱导去质子化。用于研究在STM中用高能分子束制备的亚稳态反应中间体的开发方法可以很容易地扩展到其他系统,以阐明各种重要的键活化过程。

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