催化作用
化学
动力学
化学动力学
光化学
氢
无机化学
反应机理
反应速率常数
制氢
材料科学
反应速率
多相催化
化学反应
反应中间体
化学工程
有机溶剂
动能
氧还原反应
酒
化学反应动力学
反应条件
物理化学
作者
Alvaro Posada-Borbón,Tobias Möslinger,Henrik Grönbeck
标识
DOI:10.1021/acscatal.6c01477
摘要
High Resolution Image Download MS PowerPoint Slide The use of hydrogen as an energy carrier relies on efficient storage technologies. One appealing alternative is liquid organic hydrogen carriers (LOHC), where hydrogen is stored in liquid organic molecules at standard conditions. Catalysts are used to facilitate the loading and unloading of hydrogen in the organic molecule and one example is the storage of three hydrogen molecules in toluene (C 7 H 8 ), forming methylcyclohexane (C 7 H 14 ). We have used density functional theory (DFT) calculations in combination with mean-field microkinetic modeling to understand the factors controlling the activity and selectivity of Pt(111) as a catalyst for the toluene/methylcyclohexane LOHC pair. The simulated temperature dependence of turnover frequencies, reaction orders, and apparent activation energies is in agreement with experimental trends, and the rate controlling steps are identified. A sensitivity analysis reveals that stabilization of methylcyclohexane adsorption is one potential way to improve the rate of dehydrogenation. The unwanted side reaction of hydrodemethylation of toluene to benzene is not relevant on Pt(111); however, the simulations indicate that the presence of undercoordinated Pt-sites will make this pathway an issue.
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