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First principles analysis of hydrogen chemisorption on Pd-Re alloyed overlayers and alloyed surfaces

机译:pd-Re合金覆盖层和合金表面氢化学吸附的第一性原理分析

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摘要

Gradient corrected periodic density functional theory (DFT-GGA) slab calculations were used to examine the chemisorption of atomic hydrogen on various Pd-Re alloyed overlayers and uniformly alloyed surfaces. Adsorption was examined at 33% surface coverage, where atomic hydrogen preferred the three-fold fcc sites. The binding energy of atomic hydrogen is observed to vary by as much as 0.7 eV due to Pd-Re interactions. The computed adsorption energies were found to be between -2.35 eV [for monolayer Pd-on-Re, i.e., Pd-ML/Re(0001)] and -3.05 eV [for Pd-33 Re-66/Pd(111)]. A d-band weighting scheme was developed to extend the Hammer-Norskov surface reactivity model [Surf. Sci. 343, 211 (1995)] to the analysis of bimetallic Pd-Re alloyed systems. The hydrogen chemisorption energies are correlated linearly to the surface d-band center, which is weighted appropriately by the d-band coupling matrix elements for Pd and Re. The farther the weighted d-band center is shifted below the Fermi energy, the weaker is the interaction of atomic hydrogen with the alloyed Pd-Re surface. (C) 2000 American Institute of Physics.
机译:使用梯度校正周期密度泛函理论(DFT-GGA)平板计算来检查原子氢在各种Pd-Re合金覆盖层和均匀合金表面上的化学吸附。在33%的表面覆盖率下检查了吸附,其中氢原子更喜欢三倍的fcc位。由于Pd-Re相互作用,观察到原子氢的结合能相差0.7 eV。发现计算的吸附能在-2.35 eV [对于单层Pd-on-Re,即Pd-ML / Re(0001)]和-3.05 eV [对于Pd-33 Re-66 / Pd(111)]之间。开发了d波段加权方案以扩展Hammer-Norskov表面反应模型[Surf。科学343,211(1995)]来分析双金属Pd-Re合金系统。氢化学吸附能与表面d波段中心线性相关,该中心d波段的d波段耦合矩阵元素对Pd和Re适当加权。加权的d波段中心移到费米能量以下越远,原子氢与合金化的Pd-Re表面的相互作用越弱。 (C)2000美国物理研究所。

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