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氫分子在Mg(0001)表面的吸附與解離性能研究
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Study on H2 Adsorption and Dissociation Properties on Mg(0001) Surface
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Supported by Hunan Provincial Innovation Foundation for Postgraduate (521298294); Natural Science Foundation of Hunan Province (09JJ6079); Program for Changjiang Scholars and the Innovative Research Team in University (531105050037)

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    摘要:

    采用基于密度泛函理論的第一原理計(jì)算方法,研究了氫分子(H2)在清潔、空位缺陷及Pd原子吸附的Mg(0001)表面的吸附與解離性能。結(jié)果顯示:H2在清潔Mg(0001)表面呈較弱的物理吸附,H2解離需克服較高的能壘(1.3774 eV);空位缺陷的存在增強(qiáng)了Mg表面對(duì)H2的物理吸附能力,且使H2的解離能壘(1.2221 eV)有所降低;而清潔表面吸附的Pd原子則會(huì)與H2產(chǎn)生強(qiáng)烈的化學(xué)吸附作用,極大地降低了H2的解離能壘(0.2860 eV)。電子結(jié)構(gòu)分析發(fā)現(xiàn):3種表面對(duì)H2吸附與解離的催化活性與Mg(0001)表面最上層與H2直接產(chǎn)生吸附作用的金屬原子在費(fèi)米能級(jí)(EF)附近s軌道的成鍵電子數(shù)密切相關(guān)

    Abstract:

    By the first-principles calculations method based on the density functional theory, H2 adsorption and dissociation properties on clean, vacancy defective and Pd atom coadsorption Mg(0001) surfaces are investigated systematically. The calculation results show that the model of H2 adsorption on clean surface is weak physisorption, and there is a high energy barrier, i.e., 1.3774 eV, when H2 dissociates into two separate H atoms. Vacancy defect not only benefits enhancing of the physisorption interaction between H2 and Mg surface, but also decreasing of the energy barrier, i.e., 1.2221 eV, of H2 dissociation to some extent. For Pd atom coadsorption Mg(0001) surface, there is a strong chemisorption interaction between Pd atom and H2, and the energy barrier, i.e., 0.2860 eV, of H2 dissociation is reduced significantly. Further analysis of electronic structures shows that the catalytic activity for H2 adsorption and dissociation on three different surfaces is closely related to the bonding electrons number of s orbital of the topmost layer metal atoms which interact directly with H2 around Fermi level

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張 健,周惦武,黃雅妮,彭 平,劉金水.氫分子在Mg(0001)表面的吸附與解離性能研究[J].稀有金屬材料與工程,2009,38(9):1518~1525.[Zhang Jian, Zhou Dianwu, Huang Yani, Peng Ping, Liu Jinshui. Study on H2 Adsorption and Dissociation Properties on Mg(0001) Surface[J]. Rare Metal Materials and Engineering,2009,38(9):1518~1525.]
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  • 收稿日期:2008-09-26
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