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AbInitio Calculation of Rate Constants for Molecule-Surface Reactions with Chemical Accuracy

机译:化学精度的分子表面反应的余量常数计算

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The abinitio prediction of reaction rate constants for systems with hundreds of atoms with an accuracy that is comparable to experiment is a challenge for computational quantum chemistry. We present a divide-and-conquer strategy that departs from the potential energy surfaces obtained by standard density functional theory with inclusion of dispersion. The energies of the reactant and transition structures are refined by wavefunction-type calculations for the reaction site. Thermal effects and entropies are calculated from vibrational partition functions, and the anharmonic frequencies are calculated separately for each vibrational mode. This method is applied to a key reaction of an industrially relevant catalytic process, the methylation of small alkenes over zeolites. The calculated reaction rate constants (free energies), pre-exponential factors (entropies), and enthalpy barriers show that our computational strategy yields results that agree with experiment within chemical accuracy limits (less than one order of magnitude).
机译:具有数百个具有与实验相当的具有数百个原子的系统对反应速率常数的反应速率常数是对计算量子化学的挑战。我们提出了一种灭绝的策略,从标准密度泛函理论获得的潜在能量表面与包含分散。反应物和过渡结构的能量由反应位点的波形型计算改进。从振动分区函数计算热效应和熵,并且对于每个振动模式,单独计算Anharmonic频率。该方法适用于工业相关的催化过程的关键反应,在沸石上甲基烯烃的甲基化。计算的反应速率常数(自由能),预指数因素(熵)和焓障碍表明,我们的计算策略产生了与化学精度限制内的实验同意的结果(不到一个数量级)。

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