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首页> 外文期刊>RSC Advances >Catalytic activity of transition metal doped Cu(111) surfaces for ethanol synthesis from acetic acid hydrogenation: a DFT study
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Catalytic activity of transition metal doped Cu(111) surfaces for ethanol synthesis from acetic acid hydrogenation: a DFT study

机译:过渡金属掺杂的Cu(111)表面对乙酸加氢合成乙醇的催化活性:DFT研究

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摘要

Transition metal (Co, Ni, Ru, Rh, Pd and Pt) doped Cu(111) models are selected to examine the effects of transition metals on Cu surface for ethanol synthesis from acetic acid hydrogenation using density functional theory (DFT) calculations. On these surfaces, the adsorption of the main intermediates and reaction barriers of key elementary steps are investigated. The calculation results indicate that oxophilic metals are projected to be more active in acetic acid adsorption and acetaldehyde adsorption compared to less-oxophilic metals. Those metals with larger C adsorption energies generally have better C–OH bond cracking activity. Additionally, a good linear Br?nsted–Evans–Polanyi (BEP) correlation is established for predicting the preferences of C–OH bond scission of acetic acid on other metals. Finally, O–H bond formation in C2-oxygenates (CH3CO, CH3CHO, CH3CH2O) hydrogenation is examined on all these surfaces. The reactions are more likely to occur on less-oxophilic metal-doped Cu surfaces. Therefore, it appears to involve an intricate balance between C–OH cracking and O–H bond formation reactions. That means those metal-doped Cu-based catalysts that are capable of preferentially activating C–OH bond without considerably inhibiting O–H bond formation of C2-oxygenates are predicted to achieve optimum catalytic activity for ethanol synthesis from acetic acid hydrogenation. The results can provide theoretical guidance for related experiments as well as the designing of Cu-based catalysts for ethanol synthesis.
机译:选择过渡金属(Co,Ni,Ru,Rh,Pd和Pt)掺杂的Cu(111)模型,以使用密度泛函理论(DFT)计算来检查过渡金属对Cu表面上乙酸加氢合成乙醇的影响。在这些表面上,研究了主要中间体的主要中间体的吸附和反应壁垒。计算结果表明,与嗜氧性较低的金属相比,嗜氧性金属在乙酸吸附和乙醛吸附方面更具活性。具有较大C吸附能的金属通常具有较好的C-OH键裂解活性。此外,建立了良好的线性布朗斯台德-埃文斯-波兰尼(BEP)相关性,以预测乙酸对其他金属的C-OH键断裂优先。最后,在C 2 -含氧化合物(CH 3 CO,CH < sub> 3 CHO,CH 3 CH 2 O)加氢在所有这些表面上。该反应更可能发生在低亲氧性金属掺杂的铜表面上。因此,它似乎涉及到C–OH裂解和O–H键形成反应之间的复杂平衡。这意味着那些能够优先激活C-OH键而不会显着抑制C 2 -含氧化合物的O-H键形成的金属掺杂的铜基催化剂预计会对乙酸加氢合成乙醇具有最佳催化活性。研究结果可为相关实验以及乙醇合成铜基催化剂的设计提供理论指导。

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