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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >The energy evolution of surface plasmons on an oxidized aluminum surface: the role of the atomic polarizability of oxygen adsorbates and the thickness of the oxide layer
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The energy evolution of surface plasmons on an oxidized aluminum surface: the role of the atomic polarizability of oxygen adsorbates and the thickness of the oxide layer

机译:氧化铝表面上的表面等离子体激元的能量演化:氧被吸附物的原子极化率和氧化层厚度的作用

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摘要

The energy evolution of surface plasmons on an aluminum surface during the oxidation process is investigated using electron energy loss spectroscopy (EELS) and x-ray photoemission spectroscopy (XPS). The surface plasmon energy is determined from the location of the surface plasmon loss peak in the EELS spectra; at the same time, the total oxygen coverage (in the submonolayer regime) and the oxide layer thickness (in the multilayer regime) are obtained from the peak profiles of O 1s and Al 2p photoemission lines in the XPS spectra. In the submonolayer regime, the surface plasmon energy slightly decreases with the total oxygen coverage θ when θ 1, and the rate of decrease becomes larger as θ increases. This behaviour can be explained by a frequency-dependent polarizability model adopted in this work. In the multilayer regime, the surface plasmon energy decreases with the oxide layer thickness d_(ox), and the rate of decrease becomes smaller as d_(ox) increases. The behaviour can be interpreted using a classical electromagnetic model. Based on this model, the relative dielectric constant of the oxide layer should be 3.9 ± 0.1 in the energy range of 7-8.5 eV.
机译:使用电子能量损失谱(EELS)和X射线光发射谱(XPS)研究了氧化过程中铝表面的表面等离子体激元的能量演化。表面等离激元能量是根据EELS光谱中表面等离激元损耗峰的位置确定的。同时,从XPS光谱中的O 1s和Al 2p光发射谱线的峰轮廓获得了总的氧气覆盖率(在亚单层体系中)和氧化物层厚度(在多层体系中)。在亚单层体系中,当θ 1时,表面等离子体激元能量随总氧覆盖率θ略有降低,并且随着θ的增加,降低率变得更大。此行为可以通过这项工作中采用的频率相关的极化率模型来解释。在多层状态下,表面等离激元能量随着氧化物层厚度d_(ox)的减小而减小,并且随着d_(ox)的增加,减小的速率变小。可以使用经典电磁模型来解释行为。基于此模型,在7-8.5 eV的能量范围内,氧化物层的相对介电常数应为3.9±0.1。

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