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首页> 外文期刊>ACS catalysis >Methanol Synthesis from CO2 Hydrogenation over a Potassium-Promoted CuxO/Cu(111) (x <= 2) Model Surface: Rationalizing the Potential of Potassium in Catalysis
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Methanol Synthesis from CO2 Hydrogenation over a Potassium-Promoted CuxO/Cu(111) (x <= 2) Model Surface: Rationalizing the Potential of Potassium in Catalysis

机译:甲醇在促钾促进的助核/ Cu(111)上的CO 2氢化(x <= 2)模型表面(x <= 2)模型表面:合理化催化剂中钾的潜力

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摘要

Alkalis have been reported as a promotor in the heterogeneous catalysis, being able to enhance the activity and selectivity of catalysts. The effective utilization of alkalis in catalyst optimization requires the fundamental understanding of the underlying mechanism. In this work, we take a potassium (K)-modified CuxO/Cu(111) (x <= 2) model surface as a case study to rationalize the nature of K during the carbon dioxide hydrogenation using combined density functional theory (DFT) calculation and the kinetic Monte Carlo (KMC) simulation. Our result demonstrates the significant tuning of selectivity from carbon monoxide to methanol on going from Cu(111) to K-modified CuxO/Cu(111). The deposited K+ stabilizes the CuxO thin film under the reducing condition of carbon dioxide hydrogenation. More importantly, our study reveals that K+ acts as an active center for selective tuning in the binding, an accelerator for charge transfer, and a mediator for the electron tunneling. As a result, the K-modified CuxO/Cu(111) opens a methanediol [H2C(OH)(2)]-mediated formate pathway to facilitate the selective conversion of carbon dioxide to methanol. Our study develops the intrinsic rules of design to tune the catalytic performance using alkali metals.
机译:碱已被报告为异质催化中的促进剂,能够增强催化剂的活性和选择性。碱性优化中碱的有效利用需要对潜在机制的根本了解。在这项工作中,我们服用钾(K)制定的杂化/铜(111)(X <= 2)模型表面作为一种案例研究,以利用组合密度泛函理论(DFT)在二氧化碳氢化过程中合理化K的性质计算与动力学蒙特卡罗(KMC)仿真。我们的结果表明,从Cu(111)从Cu(111)到K-改性的杂环/ Cu(111),从Cu(111)上的一氧化碳中选择性的显着调整。沉积的K +稳定在二氧化碳氢化的还原条件下稳定杂膜。更重要的是,我们的研究表明,K +充当用于选择性调谐的活性中心,用于电荷转移的加速器,以及用于电子隧道的介体。结果,k-改性的香佐/ Cu(111)打开甲基二醇[H 2 C(OH)(2)]介导的甲酸酯途径,以促进二氧化碳的选择性转化为甲醇。我们的研究发展了使用碱金属调节催化性能的内在设计规则。

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