Investigation of Ethane Dehydrogenation and Hydrogenolysis on Pt(111), Pt(211), and Pt(100): Bayesian Quantification and Correction of DFT-Based Enthalpic and Entropic Uncertainties

被引:0
|
作者
Bello, Mubarak [1 ]
Bamidele, Olajide H. [1 ]
Terejanu, Gabriel [2 ]
Heyden, Andreas [1 ]
机构
[1] Univ South Carolina, Dept Chem Engn, Columbia, SC 29208 USA
[2] Univ N Carolina, Dept Comp Sci, Charlotte, NC 28223 USA
来源
ACS CATALYSIS | 2024年 / 14卷 / 20期
关键词
ethane dehydrogenation; ethane hydrogenolysis; platinum catalysts; Bayesian model selection; uncertaintyquantification; computational catalysis; microkineticmodeling; GAS SHIFT REACTION; NONOXIDATIVE DEHYDROGENATION; ACTIVE-SITES; CATALYSTS; PLATINUM; ADSORPTION; ETHYLENE; ACCURATE; FRAMEWORK; INSIGHTS;
D O I
10.1021/acscatal.4c03455
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Computational investigations of heterogeneously catalyzed reactions using density functional theory (DFT) are often inaccurate, largely due to uncertainties in the choice of DFT functional (enthalpic uncertainty) and approximations for modeling adsorbate movement along the catalyst surface (entropic uncertainty). This work illustrates that both uncertainties are significant in the investigation of ethane dehydrogenation (EDH) and hydrogenolysis on Pt catalysts by considering the complete deconstruction of ethane on Pt(111), Pt(211), and Pt(100) using microkinetic modeling (MKM). Hence, this work uses both noncalibrated and Bayesian-calibrated MKMs to quantify and correct inaccuracies in macroscopic properties due to both uncertainties. A Bayesian approach to the correction of entropic errors was introduced using a "Modified Fermi Function (MFF)" to calibrate between the two bounds of entropy represented by the harmonic oscillator (HO) and free translator (FT) approximations. Regardless of enthalpic and entropic uncertainties, all three surfaces are capable of ethane activation; however, Pt(211) was found to be the most active and is largely responsible for methane production. Next, Pt(111) is largely responsible for acetylene production, and Pt(100) has the highest ethylene selectivity but is most susceptible to coking. By comparison of different calibrated models, the FT entropy approximation was found to better describe EDH under typical experimental conditions. Statistical evidence was found to support Pt(111) as the active site for EDH, assuming that one single site is responsible for the chemistry. On the three surfaces, competing second dehydrogenations to CH2CH2 and CH3CH were observed as well as isomerization of CH3CH back to CH2CH2 and deeper dehydrogenation of CH3CH. C-C cleavage was found to largely proceed via the CH3C intermediate on Pt(100) and Pt(111), while on Pt(211), it was via both CHC and CH3C.
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页码:15528 / 15544
页数:17
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