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The specific oxidation mechanism in the initial stages of O_2 adsorption on submonolayer Ba covered W(110) surface

机译:亚单层Ba覆盖W(110)表面O_2吸附初期的特定氧化机理

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The initial oxidation of a polarized 0.35-ML Ba-covered W(110) surface has been investigated in detail by high-resolution photoemis-sion spectroscopy using synchrotron radiation. Upon small exposures ( ≤ 0.15 L) to O_2, both interfacial W 4f (Ba-coordinated W) and Ba 4d core levels shift simultaneously toward smaller binding energies and then fix during 0.15-0.25 L, finally disappear at 0.6 L. The concurrent negative shifts of both interfacial W 4f and Ba 4d peaks can be attributed to be a consequence of the increased occupancy of 5d states. This explanation is supported by the variations of 5d stats in valence band spectra upon the initial oxidation. Our results clearly demonstrate that charge rearrangement is the dominant effect in the surface reactivity of our oxidized surface. We also found that this charge redistribution is associated with a structural change during oxidation, which is in contrary to previous studies of alkali-metal promotion. That is, oxygen is first chemisorbed atop the polarized Ba adlayer, then incorporates beneath Ba adatoms to form a covalent Ba-O-W complex upon further dosage, and reacts strongly with the Ba overlayer to become an ionic Ba~(+2)O~(-2) surface dipole layer at 0.6 L.
机译:极化的0.35-ML Ba覆盖的W(110)表面的初始氧化已通过使用同步加速器辐射的高分辨率光电子能谱进行了详细研究。在O_2暴露量较小(≤0.15 L)时,界面W 4f(Ba配位的W)和Ba 4d核心能级同时向较小的结合能移动,然后在0.15-0.25 L内固定,最后在0.6 L时消失。界面W 4f和Ba 4d峰的移动均可以归因于5d状态占有率的增加。初始氧化后,价带谱中5d统计量的变化支持了这种解释。我们的结果清楚地表明,电荷重排是我们氧化表面的表面反应性的主要影响。我们还发现,这种电荷的重新分布与氧化过程中的结构变化有关,这与先前对碱金属促进作用的研究相反。就是说,氧气首先在极化的Ba吸附层上被化学吸附,然后在Ba吸附原子的下方结合形成共价的Ba-OW复合物,并进一步与Ba上层强烈反应成为离子Ba〜(+2)O〜( -2)表面偶极子层为0.6L。

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