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A theoretical study of hydrogen adsorption and diffusion on a W(110) surface

机译:W(110)表面上氢吸附和扩散的理论研究

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We have used density functional theory to investigate hydrogen adsorption and diffusion on a W(110) surface. Hydrogen adsorption structures were examined from low coverage to one monolayer, and a threefold hollow site was found to be the most stable site at all coverages. In contrast to previous assertions, the work function decrease is not due to electron transfer from the hydrogen atoms to the W surface, but due to electron depletion at the vacuum region above the hydrogen atoms. Hydrogen atoms can diffuse via short-bridge sites and long-bridge sites at a coverage of θ = 1.0. Although the calculated activation energy for hydrogen diffusion via a short-bridge site is as small as 0.05 eV, field emission microscope experiments have shown that the activation energy for hydrogen diffusion is about 0.20 eV, which agrees fairly well with our calculated value of the activation energy via a long-bridge site. This discrepancy can be related to hydrogen delocalization on the W(110) surface, which has been suggested by electron energy loss spectroscopy experiments.
机译:我们已经使用密度泛函理论来研究氢在W(110)表面上的吸附和扩散。从低覆盖率到单层检测氢的吸附结构,发现在所有覆盖率下最稳定的位置是三个空心点。与先前的说法相反,功函数的下降不是由于电子从氢原子转移到W表面,而是由于氢原子上方真空区域的电子耗尽。氢原子可以通过短桥位和长桥位扩散,覆盖度为θ= 1.0。尽管计算得出的氢通过短桥扩散的活化能小至0.05 eV,但场发射显微镜实验表明,氢扩散的活化能约为0.20 eV,这与我们计算的活化值相当吻合通过长桥站点获得能量。这种差异可能与W(110)表面上的氢离域有关,这已由电子能量损失谱实验证实。

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