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Selective hydrogen production at Pt(111) investigated by Quantum Monte Carlo methods for metal catalysis

机译:PT(111)的选择性氢气生产由量子蒙特卡罗方法进行金属催化

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This rapid communication gives the salient points and results of the theoretical investigation of a chemical reaction for efficient selective hydrogen production. The clean fuel produced is a sustainable energy source. Accurate methods based on quantum theory are used because the changing electronic structure is a probe that monitors reactions. The reaction between water and carbon monoxide is used industrially with metal catalysts, usually platinum. There is a considerable economic and environmental challenge underpinning this fundamental investigation where bond dissociation plays an essential role. A bond dissociation process is often the limiting step of reaction rates for industrial catalysis. Most mainstream quantum approaches fail to a greater or lesser degree in the description of this process. The present work advocates a promising alternative: the initial analysis of statistical data generated by the Quantum Monte Carlo (QMC) method demonstrated very stringent statistical accuracy for essential information on hydrogen production via the water-gas shift reaction with platinum catalyst. The transition state structure is obtained from QMC force constants and illustrated here. It corresponds to water OH-stretch concerted with Pt-H bond formation, whilst the OH oxygen atom begins to interact with the CO carbon. The present QMC evaluation of the corresponding activation barrier is low: 17.0 +/- 0.2 kcal/mol. It is close to the experimental apparent activation energy of 17.05 kcal/mol. This method is applicable to a wide range of similar systems.
机译:这种快速通信赋予了高效选择性氢气产生的化学反应的理论研究的突出点和结果。所产生的清洁燃料是可持续的能源。使用基于量子理论的准确方法,因为改变的电子结构是监测反应的探针。水和一氧化碳之间的反应在工业上使用金属催化剂,通常是铂。在债券解离发挥重要作用的情况下,有一个相当大的经济和环境挑战。债券解离方法通常是工业催化反应率的限制步骤。大多数主流量子方法在该过程的描述中无法更大或更小。目前的工作倡导有希望的替代方案:量子蒙特卡罗(QMC)方法产生的统计数据的初步分析表明了通过与铂催化剂的水 - 气体换水反应的基本信息的基本信息表现出非常严格的统计精度。从QMC力常数获得过渡状态结构并在此示出。它对应于具有Pt-H键形成的水OH-拉伸,而OH氧原子开始与CO碳相互作用。对应的激活屏障的本QMC评价为低:17.0 +/- 0.2千卡/摩尔。它接近17.05千卡/摩尔的实验表观活化能量。该方法适用于各种类似的系统。

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