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Theoretical analysis of hydrogen chemisorption on Pd(111), Re(0001) and PdML/Re(0001), ReML/Pd(111) pseudomorphic overlayers

机译:pd(111),Re(0001)和pdmL / Re(0001),RemL / pd(111)假晶体覆盖层上氢化学吸附的理论分析

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摘要

Gradient-corrected density-functional theory (DFT-GGA) periodic slab calculations have been used to analyze the binding of atomic hydrogen on monometallic Pd(111), Re(0001), and bimetallic Pd-mL/Re(0001) [pseudomorphic monolayer of Pd(111) on Re(0001)] and Re-ML/Pd(111) surfaces. The computed binding energies of atomic hydrogen adsorbed in the fee hollow site, at 100% surface coverage, on the Pd(111), Re(0001), Pd-ML/Re(0001), and Re-ML/Pd(111) surfaces, are -2.66, -2.82, -2.25, and -2.78 eV, respectively. Formal chemisorption theory was used to correlate the predicted binding energy with the location of the d-band center of the bare metal surfaces, using a model developed by Hammer and N phi rskov. The DFT-computed adsorption energies were also analyzed on the basis of the density of states (DOS) at the Fermi level for the clean metal surfaces. The results indicate a clear correlation between the d-band center of the surface metal atoms and the hydrogen chemisorption energy. The further the d-band center is from the Fermi level, the weaker is the chemisorption bond of atomic hydrogen on the surface. Although the DOS at the Fermi level may be related to the location of the d-band, it does not appear to provide an independent parameter for assessing surface reactivity. The weak chemisorption of hydrogen on the Pd-ML/Re(0001) surface relates to substantial lowering of the d-band center of Pd, when it is pseudomorphically deposited as a monolayer on a Re substrate. [S0163-1829(99)00331-2].
机译:梯度校正密度泛函理论(DFT-GGA)周期性平板计算已用于分析原子氢在单金属Pd(111),Re(0001)和双金属Pd-mL / Re(0001)[拟单晶单层上的结合Re(0001)]和Re-ML / Pd(111)表面上的Pd(111)的分布。计算得出的空心氢原子在Pd(111),Re(0001),Pd-ML / Re(0001)和Re-ML / Pd(111)上以100%表面覆盖率吸附在空心原子中的结合氢的计算能表面分别为-2.66,-2.82,-2.25和-2.78 eV。使用由Hammer和N phi rskov开发的模型,形式化学吸附理论将预测的结合能与裸金属表面的d带中心位置相关联。还基于清洁金属表面费米能级的态密度(DOS)分析了DFT计算的吸附能。结果表明表面金属原子的d谱带中心与氢化学吸收能之间存在明显的相关性。 d波段中心离费米能级越远,原子氢在表面上的化学吸附键越弱。尽管费米能级的DOS可能与d波段的位置有关,但它似乎并未提供用于评估表面反应性的独立参数。氢在Pd-ML / Re(0001)表面上的弱化学吸附作用是当将Pd伪装成单层沉积在Re衬底上时,Pd d带中心的显着降低。 [S0163-1829(99)00331-2]。

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