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Differentiation of O-H and C-H Bond Scission Mechanisms of Ethylene Glycol on Pt and Ni/Pt Using Theory and Isotopic Labeling Experiments

机译:用理论和同位素标记实验区分乙二醇对Pt和Ni / Pt的O-H和C-H键断裂机理

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摘要

Understanding and controlling bond-breaking sequences of oxygenates on transition metal catalysts can greatly impact the utilization of biomass feedstocks for fuels and chemicals. The decomposition of ethylene glycol, as the simplest representative of biomass-derived polyols, was studied via density functional theory (DFT) calculations to identify the differences in reaction pathways between Pt and the more active Ni/Pt bimetallic catalyst. Comparison of the computed transition states indicated three potentially feasible paths from ethylene glycol to Cl oxygenated adsorbates on Pt. While not important on Pt, the pathway to 1,2-dioxyethylene (OCH_2CH_2O) is favored energetically on the Ni/Pt catalyst. Temperature-programmed desorption (TPD) experiments were conducted with deuterated ethylene glycols for comparison with DFT results. These experiments confirmed that decomposition of ethylene glycol on Pt proceeds via initial O-H bond cleavage, followed by C-H and the second O-H bond cleavages, whereas on the Ni/Pt surface, both O-H bonds are cleaved initially. The results are consistent with vibrational spectra and indicate that tuning of the catalyst surface can selectively control bond breaking. Finally, the significant mechanistic differences in decomposition of polyols compared to that of monoalcohols and hydrocarbons serve to identify general trends in bond scission sequences.
机译:了解和控制过渡金属催化剂上含氧化合物的键断裂顺序会极大地影响生物质原料用于燃料和化学品的利用。通过密度泛函理论(DFT)计算研究了乙二醇的分解,它是生物质衍生的多元醇的最简单代表,以确定Pt与活性更高的Ni / Pt双金属催化剂之间反应途径的差异。计算的过渡态的比较表明,从乙二醇到Pt上的Cl氧化吸附物的三个潜在可行路径。尽管对Pt并不重要,但在Ni / Pt催化剂上大力促进了1,2-二氧乙烯(OCH_2CH_2O)的生成。用氘代乙二醇进行了程序升温脱附(TPD)实验,以与DFT结果进行比较。这些实验证实了乙二醇在Pt上的分解是通过最初的O-H键断裂而进行的,随后是C-H和第二次O-H键断裂,而在Ni / Pt表面上,两个O-H键都首先断裂。结果与振动光谱一致,表明催化剂表面的调节可以选择性地控制键断裂。最后,与一元醇和碳氢化合物相比,多元醇分解的显着机理差异有助于确定键断裂序列的一般趋势。

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  • 来源
    《Journal of the American Chemical Society》 |2011年第20期|p.7996-8004|共9页
  • 作者单位

    Department of Chemical Engineering, Catalysis Center for Energy Innovation and Center for Catalytic Science and Technology, University of Delaware, Newark, Delaware 19716-3110, United States;

    Department of Chemical Engineering, Catalysis Center for Energy Innovation and Center for Catalytic Science and Technology, University of Delaware, Newark, Delaware 19716-3110, United States;

    Department of Chemical Engineering, Catalysis Center for Energy Innovation and Center for Catalytic Science and Technology, University of Delaware, Newark, Delaware 19716-3110, United States;

    Department of Chemical Engineering, Catalysis Center for Energy Innovation and Center for Catalytic Science and Technology, University of Delaware, Newark, Delaware 19716-3110, United States;

    Department of Chemical Engineering, Catalysis Center for Energy Innovation and Center for Catalytic Science and Technology, University of Delaware, Newark, Delaware 19716-3110, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 03:14:16

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