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Theoretical Study of the Mechanism of Furfural Conversionon the NiCuCu(111) Surface

机译:糠醛转化机理的理论研究在NiCuCu(111)表面上

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摘要

The full potential energy surface for the hydrodeoxygenation of furfural to furan and other ring-opening products has been systematically investigated using periodic density functional theory including dispersion corrections (PBE-D3) on the bimetallic NiCuCu(111) surface. For furan formation, the most favorable first step is the dehydrogenation of furfural into furoyl (F-CHO + H = F-CO + 2H), the successive step is decarbonylation of furoyl into furanyl (F-CO + H = F + CO + 2H), and the third step of furan formation from the hydrogenation of furanyl (F + CO + 2H = FA + CO + H) is the rate-determining step. In addition, on the basis of the most stably adsorbed furan and H, the ring opening of furan was found to be more favorable for producing many chemicals such as propane, butanal, butanol, and butene. In summary, furan is the main product of furfural conversion on the NiCuCu(111) surface. Since results have been obtained only for the NiCuCu(111) surface constructed by replacing the topmost Cu atoms by Ni atoms, the entire experimentally observed reactivity and selectivity of bimetallic CuNicatalysts for different construction methods cannot be fully rationalized.Nevertheless, the results provide the basis for investigating theintrinsic activity of CuNi catalysts in the hydrodeoxygenation ofoxygenates involved in the refining of biomass-derived oils.
机译:使用周期性密度泛函理论,包括在双金属NiCuCu(111)表面上的弥散校正(PBE-D3),系统地研究了糠醛加氢脱氢成呋喃和其他开环产物的全部势能面。对于呋喃的形成,最有利的第一步是将糠醛脱氢成糠酰(F-CHO + H = F-CO + 2H),后续步骤是将糠酰脱羰成呋喃基(F-CO + H = F + CO +由呋喃基的氢化形成呋喃的第三步骤(F + CO + 2H = FA + CO + H)是速率确定步骤。另外,基于最稳定地吸附的呋喃和H,发现呋喃的开环对生产许多化学品如丙烷,丁醛,丁醇和丁烯更有利。总之,呋喃是NiCuCu(111)表面上糠醛转化的主要产物。由于仅通过用Ni原子取代最上面的Cu原子而构成的NiCuCu(111)表面获得了结果,因此整个实验观察到双金属CuNi的反应性和选择性不同施工方法的催化剂不能完全合理化。尽管如此,研究结果仍为调查CuNi催化剂加氢脱氧的内在活性。含氧化合物涉及生物质衍生油的提炼。

著录项

  • 期刊名称 ACS Omega
  • 作者

    Yun Shi; *;

  • 作者单位
  • 年(卷),期 2019(4),17
  • 年度 2019
  • 页码 17447–17456
  • 总页数 10
  • 原文格式 PDF
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