Kurdziel Sophia J, Vlachos Dionisios G
Department of Chemical and Biomolecular Engineering, University of Delaware, 150 Academy Street, Newark, DE, 19716, USA.
Catalysis Center for Energy Innovation, RAPID Manufacturing Institute, Delaware Energy Institute (DEI), University of Delaware, 221 Academy Street, Newark, DE, 19716, USA.
Phys Chem Chem Phys. 2023 Mar 22;25(12):8412-8423. doi: 10.1039/d2cp04425k.
Estimating thermochemical properties from linear correlations may provide a pathway to circumvent expensive density functional theory (DFT) calculations for quantities such as pre-exponentials and temperature corrections to DFT energies. Here, we construct thermochemical scaling relations between C-C-alkanes in the gas phase and adsorbed alkyl chains extending from several transition metal surfaces, and examine changes in the slope and fit between metals and adsorption sites. We subsequently add -OH, -NH, CO, and CC functional groups to the C-C molecules and demonstrate strong linear correlations for thermochemistry across all species. We broaden the correlations to incorporate transition states of C-C-alkane dehydrogenation reactions, where thermochemistry for computationally prohibitive transition-state calculations can be quickly assessed. Additionally, we rationalize the linearity of thermochemical correlations based on the composition of the homologous series and theoretical assessments. As an application of the correlations, we estimate pre-exponentials for elementary surface reactions of ethane and propane hydrogenolysis on Ru(0001), which is of relevance to plastic hydrogenolysis. Depending on kinetically important steps, entropic contributions may be necessary to include in certain reaction mechanisms; in contrasting examples, entropies are found to be relatively insignificant for ethane hydrogenolysis but pertinent for propane hydrogenolysis.
通过线性相关性估算热化学性质,可能为规避针对诸如指前因子和对密度泛函理论(DFT)能量的温度校正等数量进行昂贵的DFT计算提供一条途径。在此,我们构建了气相中C-C-烷烃与从几种过渡金属表面延伸出的吸附烷基链之间的热化学标度关系,并研究了金属与吸附位点之间斜率和拟合度的变化。随后,我们在C-C分子中添加了-OH、-NH、C=O和C=C官能团,并证明了所有物种热化学性质之间存在强线性相关性。我们拓宽了相关性范围,纳入了C-C-烷烃脱氢反应的过渡态,在此可以快速评估计算上难以进行的过渡态计算的热化学性质。此外,我们基于同系物组成和理论评估,对热化学相关性的线性进行了合理化解释。作为相关性的一个应用,我们估算了乙烷和丙烷在Ru(0001)上氢解的基元表面反应的指前因子,这与塑料氢解相关。根据动力学上重要的步骤,在某些反应机理中可能需要纳入熵的贡献;在对比示例中,发现熵对乙烷氢解相对不重要,但对丙烷氢解至关重要。