Institut für Physikalische Chemie und Elektrochemie, Leibniz Universität Hannover, Callinstrasse 3A, 30167, Hannover, Germany.
Chemistry. 2018 May 17;24(28):7188-7199. doi: 10.1002/chem.201705867. Epub 2018 Apr 30.
Among noble metal catalysts, rhodium (Rh) is unique in its ability to perform a one-step synthesis of ethanol from syngas. The first steps following the adsorption of syngas on Rh surfaces are assumed to be responsible for the conversion of CO and the selectivity effects between C , C , and oxygenated species. In the current work, constrained ab initio molecular dynamics are applied to investigate the kinetics of CO dissociation and hydrogenation over flat and stepped Rh surfaces. The obtained barriers for the Rh(111) surface are in good agreement with the literature data. On the stepped Rh(211) surface, a large site-dependent variation in barrier height is shown, with the upper terrace exhibiting behavior comparable to the Rh(111) surface, whereas the barriers over the lower terrace site are generally significantly lower. The rate constants are calculated using transition state theory for both surfaces, and are applied successfully in a microkinetic model, confirming the predicted impact on CO conversion and CH /C -oxygenate/C H selectivity. In addition to the high-accuracy energetics and rate constants reported for CO dissociation/hydrogenation and the presentation of an updated microkinetic mechanism for Rh catalysts, the applicability of constrained molecular dynamics for reaction barrier calculation is confirmed, and sensitive pathways affecting the selectivity between formaldehyde/methanol over Rh catalysts are highlighted.
在贵金属催化剂中,铑(Rh)是唯一能够将合成气一步合成乙醇的金属。铑表面吸附合成气后的最初步骤被认为是负责 CO 转化和 C 、 C 和含氧物种之间选择性效应的关键步骤。在目前的工作中,我们应用受限的从头算分子动力学来研究 CO 解离和加氢在平坦和阶梯 Rh 表面上的动力学。所得到的 Rh(111)表面的势垒与文献数据吻合良好。在阶梯 Rh(211)表面上,势垒高度表现出很大的位依赖变化,上平台表现出与 Rh(111)表面相当的行为,而下平台位的势垒通常显著降低。我们使用过渡态理论为两种表面计算了速率常数,并成功地应用于微动力学模型中,证实了对 CO 转化率和 CH /C - 氧化物 /C H 选择性的预测影响。除了报告 CO 解离/加氢的高精度能量学和速率常数以及更新的 Rh 催化剂微动力学机制外,还确认了受限分子动力学在反应势垒计算中的适用性,并突出了影响 Rh 催化剂上甲醛/甲醇选择性的敏感途径。