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Interfacial Hydrogen-Bonding Dynamics in Surface-Facilitated Dehydrogenation of Water on TiO_2(110)

机译:TiO_2(110)表面促进水脱氢的界面氢键动力学

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Molecular-level understanding of the dehydrogenation of interfacial water molecules on metal oxides and their interactive nature relies on the ability to track the motion of light and small hydrogen atoms, which is known to be difficult. Here, we report precise measurements of the surface-facilitated water dehydrogenation process at terminal Ti sites of TiO_2(110) using scanning tunneling microscopy. Our measured hydrogen-bond dynamics of H_2O and D_2O reveal that the vibrational and electronic excitations dominate the sequential transfer of two H (D) atoms from a H_2O (D_2O) molecule to adjacent surface oxygen sites, manifesting the active participation of the oxide surface in the dehydrogenation processes. Our results show that, at the stoichiometric Ti_(5c) sites, individual H_2O molecules are energetically less stable than the dissociative form, where a barrier is expected to be as small as approximately 70—120 meV on the basis of our experimental and theoretical results. Moreover, our results reveal that interfacial hydrogen bonds can effectively assist H atom transfer and exchange across the surface. The revealed quantitative hydrogen-bond dynamics provide a new atomistic mechanism for water interactions on metal oxides in general.
机译:分子层面对界面水分子在金属氧化物上的脱氢及其相互作用性质的理解依赖于跟踪轻和小氢原子运动的能力,这是众所周知的。在这里,我们报告使用扫描隧道显微镜在TiO_2(110)的末端Ti位点处的表面促进水脱氢过程的精确测量。我们测得的H_2O和D_2O的氢键动力学表明,振动和电子激发控制着两个H(D)原子从H_2O(D_2O)分子向相邻表面氧位点的顺序转移,从而表明了氧化物表面的活跃参与。脱氢过程。我们的结果表明,在化学计量的Ti_(5c)位点上,单个H_2O分子在能量上比解离形式不稳定,在这种情况下,根据我们的实验和理论结果,势垒会小至约70-120 meV 。此外,我们的结果表明界面氢键可以有效地协助H原子在整个表面上转移和交换。揭示的定量氢键动力学为水与金属氧化物的相互作用提供了新的原子机理。

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