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Pynta——一种用于计算表面和气体-表面动力学的自动化工作流程。

Pynta─An Automated Workflow for Calculation of Surface and Gas-Surface Kinetics.

机构信息

Combustion Research Facility, Sandia National Laboratories, Livermore, California 94550, United States.

Chemical Sciences and Engineering Division, Argonne National Laboratory, Lemont, Illinois 60439, United States.

出版信息

J Chem Inf Model. 2023 Aug 28;63(16):5153-5168. doi: 10.1021/acs.jcim.3c00948. Epub 2023 Aug 9.

Abstract

Many important industrial processes rely on heterogeneous catalytic systems. However, given all possible catalysts and conditions of interest, it is impractical to optimize most systems experimentally. Automatically generated microkinetic models can be used to efficiently consider many catalysts and conditions. However, these microkinetic models require accurate estimation of many thermochemical and kinetic parameters. Manually calculating these parameters is tedious and error prone, involving many interconnected computations. We present Pynta, a workflow software for automating the calculation of surface and gas-surface reactions. Pynta takes the reactants, products, and atom maps for the reactions of interest, generates sets of initial guesses for all species and saddle points, runs all optimizations, frequency, and IRC calculations, and computes the associated thermochemistry and rate coefficients. It is able to consider all unique adsorption configurations for both adsorbates and saddle points, allowing it to handle high index surfaces and bidentate species. Pynta implements a new saddle point guess generation method called harmonically forced saddle point searching (HFSP). HFSP defines harmonic potentials based on the optimized adsorbate geometries and which bonds are breaking and forming that allow initial placements to be optimized using the GFN1-xTB semiempirical method to create reliable saddle point guesses. This method is reaction class agnostic and fast, allowing Pynta to consider all possible adsorbate site placements efficiently. We demonstrate Pynta on 11 diverse reactions involving monodenate, bidentate, and gas-phase species, many distinct reaction classes, and both a low and a high index facet of Cu. Our results suggest that it is very important to consider reactions between adsorbates adsorbed in all unique configurations for interadsorbate group transfers and reactions on high index surfaces.

摘要

许多重要的工业过程都依赖于多相催化体系。然而,考虑到所有可能的催化剂和感兴趣的条件,通过实验来优化大多数体系是不切实际的。自动生成的微观动力学模型可以有效地考虑许多催化剂和条件。然而,这些微观动力学模型需要准确估计许多热化学和动力学参数。手动计算这些参数繁琐且容易出错,涉及许多相互关联的计算。我们提出了 Pynta,这是一种用于自动计算表面和气相-表面反应的工作流软件。Pynta 采用感兴趣的反应的反应物、产物和原子映射,为所有物种和鞍点生成一组初始猜测,运行所有优化、频率和 IRC 计算,并计算相关的热化学和速率系数。它能够考虑吸附剂和鞍点的所有独特吸附构型,从而能够处理高指数表面和双齿物种。Pynta 实现了一种称为谐波强制鞍点搜索 (HFSP) 的新鞍点猜测生成方法。HFSP 根据优化的吸附剂几何形状和正在断裂和形成的键定义谐波势,允许使用 GFN1-xTB 半经验方法优化初始位置,从而创建可靠的鞍点猜测。该方法与反应类别无关且快速,允许 Pynta 有效地考虑所有可能的吸附剂位置。我们在 11 种不同的反应中展示了 Pynta,这些反应涉及单齿、双齿和气相物种、许多不同的反应类别,以及 Cu 的低指数和高指数面。我们的结果表明,对于高指数表面上的相互吸附体基团转移和反应,非常重要的是要考虑以所有独特构型吸附的吸附体之间的反应。

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