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Insights into the reaction mechanism of CO oxidative coupling to dimethyl oxalate over palladium: a combined DFT and IR study

机译:深入探讨CO氧化偶联钯上草酸二甲酯的反应机理:结合DFT和IR研究

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摘要

Oxidative coupling of toxic pollutant CO to form the platform raw chemical material dimethyl oxalate (DMO) has been industrialized however the catalytic mechanism has been unknown so far. The reaction mechanism of CO oxidative coupling to form DMO on a Pd(111) surface has been investigated using density functional theory (DFT) and in situ diffuse reflectance infrared (DRIR) spectroscopy. DFT calculations and in situ DRIRS measurements indicate that two co-adsorbed intermediates COOMe and OCCO, initiate the reaction. C-C coupling occurs earlier due to a low coupling barrier and small steric hindrance. The results also suggest that Pd(111) is selective towards DMO over DMC, and that CO pre-adsorption and CO in excess effectively enhance the yield of DMO. The microscopic elucidation of this important reaction suggests improvements in coal-to-EG (CTEG) production which can be applied in practice to effectively enhance the yield and reduce the cost. The results may help with further fine-tuning and designing of high-efficient noble metal catalysts.
机译:毒性污染物CO氧化偶联形成平台原料化学原料草酸二甲酯(DMO)已经工业化,但是到目前为止,其催化机理尚不清楚。使用密度泛函理论(DFT)和原位漫反射红外(DRIR)光谱研究了CO氧化偶合在Pd(111)表面上形成DMO的反应机理。 DFT计算和原位DRIRS测量表明,两种共吸附的中间体COOMe和OCCO引发了反应。由于低的耦合势垒和小的位阻,C-C耦合较早发生。结果还表明,Pd(111)对DMO的选择性高于DMC,CO的预吸附和过量的CO有效地提高了DMO的产率。对该重要反应的微观解释表明,煤制EG(CTEG)生产得到了改善,可在实践中应用该方法以有效提高产量并降低成本。结果可能有助于进一步的微调和设计高效的贵金属催化剂。

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