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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >The reaction mechanism and selectivity of acetylene hydrogenation over Ni-Ga intermetallic compound catalysts: a density functional theory study
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The reaction mechanism and selectivity of acetylene hydrogenation over Ni-Ga intermetallic compound catalysts: a density functional theory study

机译:乙炔氢化对Ni-Ga金属间化合物催化剂的反应机理和选择性:密度函数理论研究

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摘要

Intermetallic compounds (IMCs) have shown excellent catalytic performance toward the selective hydrogenation of acetylene, but the theoretical understanding on this reaction over Ni-based IMCs is rather limited. In this work, the adsorptions of the C-2 species, Bader charge, projected density of states (PDOS) and the reaction pathways were calculated by the density functional theory (DFT) method to investigate the mechanism and selectivity for the acetylene hydrogenation on the (111) surface of NinGa (n = 1, 3) IMCs, with a comparative study on the pristine Ni(111) surface. The results indicate that the adsorption energy of acetylene increased along with the Ni/Ga ratio, therefore a feasible acetylene adsorption on the Ga-rich surface guaranteed a low effective barrier, leading to the best activity for the NiGa(111) surface among three surfaces. Bader charge analysis shows that electrons transferred from Ga atoms to Ni atoms and further delivered to C-2 species, decreasing the adsorption capacity of C-2 species on NiGa(111) in comparison with those on Ni(111) and Ni3Ga(111). The reaction pathway of acetylene hydrogenation to ethylene via vinyl or even over-hydrogenation to ethane via ethyl is more favorable than the pathway involving the ethylidene intermediate on all surfaces. Moreover, the ethylene selectivity has a positive correlation with the gallium content by comparing the desorption barrier with the hydrogenation barrier of ethylene, thus the NiGa(111) surface also exhibits the best selectivity. Therefore, the NiGa(111) surface demonstrates to be an excellent reaction facet for the semihydrogenation of acetylene, which agreed with the experimental findings, and would provide helpful instructions for designing and preparing highly-selective and noble-substitute catalysts of alkyne semihydrogenation.
机译:金属间化合物(IMC)显示出优异的催化性能朝向乙炔的选择性氢化,但对基于Ni的IMCs对该反应的理论理解相当有限。在这项工作中,通过密度泛函理论(DFT)方法计算C-2物种,獾的电荷,突出的状态(PDO)和反应途径的吸附,研究乙炔氢化的机制和选择性(111)宁加(n = 1,3)IMC的表面,具有对比研究原始Ni(111)表面。结果表明,乙炔的吸附能量随着Ni / Ga比而增加,因此在富含Ga的表面上可行的乙炔吸附,保证了低有效的屏障,这导致三个表面中的Niga(111)表面的最佳活性。獾电荷分析表明,与Ni(111)和Ni3Ga(111)的那些相比,从Ga原子转移到Ni原子并进一步递送至C-2物种的电子,降低了Nia(111)上的C-2物种的吸附容量(111)(111)(111) 。通过乙烯基或甚至通过乙基通过乙烯乙烯对乙烯的反应途径通过乙基比涉及亚乙基中间体在所有表面上的途径更有利。此外,通过将解吸屏障与乙烯的氢化屏障进行比较,乙烯选择性与镓含量具有正相关,因此Niga(111)表面也表现出最佳的选择性。因此,NIGA(111)表面表明是乙炔半萘乙烯的优异反应刻,这与实验结果同意,并将提供有用的设计和制备炔烃半氢化的高精度和贵巴替代催化剂的指示。

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    Beijing Univ Chem Technol State Key Lab Chem Resource Engn Beijing 100029 Peoples R China;

    Beijing Univ Chem Technol State Key Lab Chem Resource Engn Beijing 100029 Peoples R China;

    Beijing Univ Chem Technol State Key Lab Chem Resource Engn Beijing 100029 Peoples R China;

    Beijing Ctr Phys &

    Chem Anal Beijing 100089 Peoples R China;

    Beijing Univ Chem Technol State Key Lab Chem Resource Engn Beijing 100029 Peoples R China;

    Beijing Univ Chem Technol State Key Lab Chem Resource Engn Beijing 100029 Peoples R China;

    Beijing Univ Chem Technol State Key Lab Chem Resource Engn Beijing 100029 Peoples R China;

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  • 正文语种 eng
  • 中图分类 化学;无机化学;
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