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金属氧化物-水界面的动态稳定化。

Dynamic Stabilization of Metal Oxide-Water Interfaces.

机构信息

Physical Sciences Division, Pacific Northwest National Laboratory , Richland, Washington 99352, United States.

Department of Physics and Astronomy, University College London , London WC1E 6BT, U.K.

出版信息

J Am Chem Soc. 2017 Feb 22;139(7):2581-2584. doi: 10.1021/jacs.6b13096. Epub 2017 Feb 13.

Abstract

The interaction of water with metal oxide surfaces plays a crucial role in the catalytic and geochemical behavior of metal oxides. In a vast majority of studies, the interfacial structure is assumed to arise from a relatively static lowest energy configuration of atoms, even at room temperature. Using hematite (α-FeO) as a model oxide, we show through a direct comparison of in situ synchrotron X-ray scattering with density functional theory-based molecular dynamics simulations that the structure of the (11̅02) termination is dynamically stabilized by picosecond water exchange. Simulations show frequent exchanges between terminal aquo groups and adsorbed water in locations and with partial residence times consistent with experimentally determined atomic sites and fractional occupancies. Frequent water exchange occurs even for an ultrathin adsorbed water film persisting on the surface under a dry atmosphere. The resulting time-averaged interfacial structure consists of a ridged lateral arrangement of adsorbed water molecules hydrogen bonded to terminal aquo groups. Surface pK prediction based on bond valence analysis suggests that water exchange will influence the proton-transfer reactions underlying the acid/base reactivity at the interface. Our findings provide important new insights for understanding complex interfacial chemical processes at metal oxide-water interfaces.

摘要

水与金属氧化物表面的相互作用在金属氧化物的催化和地球化学行为中起着至关重要的作用。在绝大多数研究中,即使在室温下,界面结构也被假定为由原子的相对静态最低能量构象产生。本文以赤铁矿(α-FeO)作为模型氧化物,通过同步辐射 X 射线散射与基于密度泛函理论的分子动力学模拟的直接比较表明,(11̅02)终止面的结构由皮秒级的水交换动态稳定。模拟显示,在干燥气氛下,即使在表面上存在超薄的吸附水膜,终端水合基团和吸附水之间也会频繁交换,其位置和部分停留时间与实验确定的原子位置和分数占有率一致。频繁的水交换甚至发生在表面上持续存在的超薄吸附水膜中。由此产生的界面结构的时间平均结构由氢键合到末端水合基团的吸附水分子的脊状横向排列组成。基于键价分析的表面 pK 预测表明,水交换将影响界面处酸/碱反应性所基于的质子转移反应。我们的发现为理解金属氧化物-水界面上复杂的界面化学过程提供了重要的新见解。

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