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H2S 与 ZnO(1010) 表面的相互作用。

The interaction of H2S with the ZnO(1010) surface.

机构信息

Interdisziplinäres Zentrum für Molekulare Materialien (ICMM) and Computer-Chemie-Centrum (CCC), Universität Erlangen-Nürnberg, 91052 Erlangen, Germany.

出版信息

Phys Chem Chem Phys. 2013 Jun 7;15(21):8373-82. doi: 10.1039/c3cp44546a. Epub 2013 Apr 26.

Abstract

Using density functional theory with and without Hubbard-U correction we have calculated the geometric structure and the binding energy of H2S molecules adsorbed on the main cleavage plane of ZnO. We find that H2S molecules preferentially dissociate upon adsorption, with a negligible barrier for the first and an activation energy of about 0.5 eV for the second SH bond dissociation. In the low coverage limit of individual molecules single and double dissociation are energetically almost degenerate. At higher coverage double dissociation is favored because of attractive adsorbate-adsorbate interactions. Thermodynamic analysis shows that the double-dissociated state at full saturation with a coverage of 1/2 monolayer is the most stable adsorbate structure for a wide range of temperatures and partial pressures. However, at high H2S chemical potential a full monolayer of single-dissociated H2S becomes thermodynamically more favorable. In addition, at low temperature this structure may exist as a metastable configuration due to the activation barrier for the second SH bond cleavage. Finally we show that it is thermodynamically favorable for adsorbed H2S to react with the first ZnO surface layer to form ZnS and water.

摘要

使用包含和不包含 Hubbard-U 修正的密度泛函理论,我们计算了 H2S 分子在 ZnO 主解理面上吸附的几何结构和结合能。我们发现 H2S 分子在吸附时优先解离,第一个 SH 键的解离几乎没有势垒,第二个 SH 键的解离需要约 0.5 eV 的激活能。在单个分子的低覆盖度极限下,单解离和双解离在能量上几乎是简并的。在更高的覆盖度下,双解离是有利的,因为存在吸附剂-吸附剂之间的吸引力。热力学分析表明,在温度和分压的广泛范围内,完全饱和的双层解离态(覆盖度为 1/2 单层)是最稳定的吸附剂结构。然而,在高 H2S 化学势下,单层单解离的 H2S 在热力学上变得更加有利。此外,由于第二个 SH 键的断裂需要激活能,因此在低温下,这种结构可能以亚稳态存在。最后,我们表明,吸附的 H2S 与 ZnO 表面的第一层反应生成 ZnS 和水在热力学上是有利的。

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