化学
催化作用
铂金
氨
密度泛函理论
选择性
氧化还原
反应速率
物理化学
无机化学
计算化学
有机化学
作者
Hanyu Ma,William F. Schneider
标识
DOI:10.1016/j.jcat.2020.01.029
摘要
Abstract Ammonia oxidation is the heart of the Ostwald process and is important in emissions control. Catalytic behaviors are a function of conditions and are observed to vary across the platinum group metals (PGMs) Pt, Pd, Rh. Here, we combine density functional theory computations and microkinetic modeling to rationalize these dependencies. We compute reactions over model (2 1 1) and (1 1 1) surfaces of PGMs. Binding energies are similar on Pd and Pt and generally greater on Rh, while activation energies vary across all metals. Rates on (2 1 1) surfaces are greater than (1 1 1) surfaces. The stepped Pt is most active and stepped Rh most selective to N2 at ammonia slip conditions, while at Ostwald process conditions, stepped Pd is most active and stepped Pt most selective to NO. Degree of rate and selectivity control analysis provides insights into the reactions limiting performance of PGMs. Both activation barriers and surface coverages influence rates and selectivities.
科研通智能强力驱动
Strongly Powered by AbleSci AI