首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Improved Force-Field Parameters for QM/MM Simulations of the Energies of Adsorption for Molecules in Zeolites and a Free Rotor Correction to the Rigid Rotor Harmonic Oscillator Model for Adsorption Enthalpies
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Improved Force-Field Parameters for QM/MM Simulations of the Energies of Adsorption for Molecules in Zeolites and a Free Rotor Correction to the Rigid Rotor Harmonic Oscillator Model for Adsorption Enthalpies

机译:改进的力场参数,用于分子筛中分子的吸附能的QM / MM模拟以及对吸附焓的刚性转子谐波振荡器模型的自由转子校正

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Quantum mechanics/molecular mechanics (QM/MM) simulations provide an efficient avenue for studying reactions catalyzed in zeolite systems; however, the accuracy of such calculations is highly dependent on the zeolite MM parameters used. Previously reported parameters (P1), which were chosen to minimize the root mean square (RMS) deviations of adsorption energies compared with full QM omega B97X-D/6-31+G** adsorption energies, are shown to overestimate binding energies compared with experimental values, particularly for larger substrates. To address this issue, a new parameter set (P2) is derived by rescaling the previously reported characteristic energies of the Lennard-Jones potential in P1. The accuracy of the thermal correction for adsorption enthalpies determined by the rigid rotor-harmonic oscillator approximation (RRHO) is examined and shown to be improved by treating low-lying vibrational modes as free translational and rotational modes via a quasi-RRHO model. With P2 and quasi-RRHO, adsorption energies calculated with QM/MM agree with experimental values with an RMS error of 1.8 kcal/mol for both nonpolar and polar molecules adsorbed in MFI, H-MFI, and H-BEA. By contrast, the RMS error for the same test sets obtained using parameter set P1 is 8.3 kcal/mol. Glucose-fructose isomerization catalyzed by Sn-BEA is taken as an example to demonstrate that improved values for apparent activation energies can be obtained using the methodology reported here. With parameter set P2, the apparent activation energy calculated with QM/MM reproduces the experimental value to within 1 kcal/mol. By contrast, using parameter set P1, the error is -12.9 kcal/mol.
机译:量子力学/分子力学(QM / MM)模拟为研究沸石系统中催化的反应提供了一条有效途径。然而,这种计算的准确性高度依赖于所使用的沸石MM参数。先前报道的参数(P1)被选择为与完全QM omega B97X-D / 6-31 + G **吸附能相比,能最大程度地降低吸附能的均方根(RMS)偏差,但与之相比,该参数被高估了实验值,特别是对于较大的基材。为了解决这个问题,通过重新缩放P1中Lennard-Jones势能的先前报告的特征能量,可以得出新的参数集(P2)。通过刚性转子-谐波谐振器近似(RRHO)确定了吸附焓的热校正精度,并通过准RRHO模型将低层振动模式视为自由平移和旋转模式,从而提高了该精度。对于P2和准RRHO,对于MFI,H-MFI和H-BEA中吸附的非极性和极性分子,用QM / MM计算的吸附能与实验值一致,均方根误差为1.8 kcal / mol。相反,使用参数集P1获得的相同测试集的RMS误差为8.3 kcal / mol。以Sn-BEA催化的葡萄糖-果糖异构化为例,证明了使用本文报道的方法可获得明显的活化能值。使用参数集P2时,用QM / MM计算的表观活化能将实验值再现到1 kcal / mol之内。相反,使用参数集P1,误差为-12.9 kcal / mol。

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